Physics with Nuclear Astrophysics BSc (Hons) or MPhys — 2027 entry

Our exciting, comprehensive BSc and MPhys Physics with Nuclear Astrophysics degrees are unique in the UK. You’ll study core physics modules combined with specialist knowledge of the quantum world of atomic nuclei and the cosmic scale of astronomy.

6,690+ people have created a bespoke digital prospectus.

Key course information

Typical offer
ABB
Start date
September 2027
Full time
3 years
UK fees
£10,050
Overseas fees
£28,100
Subject area
Physics
UCAS code
F3F5
Campus
Stag Hill

Why choose this course?

Students on our Physics with Nuclear Astrophysics degrees learn in our excellent facilities, from passionate and dedicated academics. They also benefit from our partnership with the National Physical Laboratory.

There are two unique aspects of both levels of our physics with nuclear astrophysics degrees:

Get industry-ready with our award-winning Professional Training placements:

  • With the BSc, the option to take a paid Professional Training placement in industry gives you invaluable hands-on experience to enhance your employability. Our students have placed at the NPL, CERN (Switzerland) and TRIUMF (Canada).
  • On our MPhys, you’ll take a year-long, masters-level integrated research placement in one of our world-leading research groups or at one of our international partner institutions.

Our focus on undergraduate research and innovation:

  • All undergraduates have the opportunity to apply for paid 8-10 week summer research placements in our research groups and those of our South East Physics Network partners.
  • We offer in-house ‘research and innovation’ and ‘enterprise’ grants that students can apply for to fund a research placement, attend a conference or develop a new business idea.

We’re preparing you for the future by integrating AI into every course, building digital skills, confidence and creativity that employers value in tomorrow’s workplace.

Find out more information

Statistics

7th in the UK

Physics is ranked 7th in the UK for overall student satisfaction* in the National Student Survey 2026

95%

Of our maths and physics graduates are in work or further study within 15 months of graduating (Graduate Outcomes 2026, HESA)

7th in the UK

For physics and astronomy in the Daily Mail University Guide 2027

*Measured by % positivity based on Q1-24 for all institutions listed in the Guardian University Guide league tables.

Accreditation and/or recognition

Institute of Physics logo
Institute of Physics Juno Champion logo

Course details

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What you will study

You’ll explore core elements of traditional physics and astrophysics (e.g. particle physics, atoms and molecules) and topics within astronomy and nuclear physics, reflecting the outstanding research we conduct at Surrey.

Students have the option to take a Professional Training placement on the BSc or an integrated research year on the MPhys. The latter is a direct route to a masters qualification. The MPhys integrated research year allows you to develop your skills in an academic or industrial arena, before returning for your final masters-level modules.

Formal lectures are complemented with work in our specialist radiation laboratories, which have recently been refurbished and enlarged at a cost of £2.7m. As an undergraduate student, you’ll use these labs to undertake experiments related to the Nuclear and Particle Physics module.

Professional recognition

BSc (Hons) - Institute of Physics (IOP)
Accredited by the Institute of Physics (IOP) for the purpose of partially meeting the educational requirement for Chartered Physicist.

MPhys - Institute of Physics (IOP)
Accredited by the Institute of Physics (IOP) for the purpose of fully meeting the educational requirement for Chartered Physicist.

Foundation year

If you don’t meet our entry requirements, you might still be able to apply for this degree with an Engineering and Physical Sciences Foundation Year. This is an extra year of study to develop your skills and make it easier for you to get started at university. On successful completion of your foundation year, you’ll be ready to progress to the first year of your degree.

To see what modules you’ll be studying, refer to the foundation tab in the 'course structure' section.

Course structure

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The academic year is divided into two semesters of 15 weeks each. Each semester consists of a period of teaching, revision/directed learning and assessment.

The structure of our programmes follow clear educational aims that are tailored to each programme. These are all outlined in the programme specifications which include further details such as the learning outcomes.

Please note: The full module listing for the optional Professional Training placement part of your course is available in the programme specification.

Modules

Modules listed are indicative, reflecting the information available at the time of publication. Modules are subject to teaching availability, student demand and/or class size caps.

The University operates a credit framework for all taught programmes based on a 15-credit tariff.

New for 2026 entry: At Surrey, we want you to be a future-ready graduate. That’s why all our courses will offer at least one module that integrates and teaches AI tools in discipline-specific ways. You’ll develop the digital skills that employers are looking for and get comfortable with the tech of the future.

Course options

Year 1 - BSc (Hons)

Semester 1

Compulsory

FUNDAMENTALS OF PHYSICS

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This module covers some of the fundamental principles in classical physics including a discussion of units of measurement, the kinematics and dynamics of objects and conservation laws. This material revises and builds upon concepts that are first encountered in the A-level physics course and the study of mechanics as part of A-level mathematics.

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ESSENTIAL MATHEMATICS

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This module provides essential mathematical skills required for the physical sciences programme. It develops the underpinning mathematics needed by physical scientists and supports students with different levels of mathematical preparation on entry to the University. The mathematics units are delivered through supervised self study to allow flexible learning patterns. Teaching is supported by tutorial classes where students receive guidance and feedback while developing their mathematical skills.The module consolidates and extends mathematical knowledge beyond Advanced Level A2 standard, including algebra, functions, complex numbers, series, calculus, and basic matrix methods. It provides the mathematical foundation required for subsequent Level FHEQ 4 mathematics components and for introductory physics modules at Level FHEQ 4.

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SCIENTIFIC INVESTIGATION SKILLS

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This module covers a wide range of generic skills important in scientific investigation. These skills cover data handling, statistical analysis, Python programming skills, scientific writing, ethics (including academic misconduct), group working covering problem-solving, and public communication, plus library-based information research skills including information retrieval and referencing.

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OSCILLATIONS AND WAVES

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This module covers introductory concepts of simple harmonic motion and waves, drawing on and bringing together examples from different branches of physics including mechanics, optics, electronics, and electromagnetism. Some of these concepts will build upon examples that may have been encountered as part of the Physics A-level material but others are new. It combines the mathematical description, physical interpretation as well as experiments and their analysis of oscillations and wave phenomena to provide students with a well-balanced introduction to the important physical concepts that are required for further study in the subsequent modules of your physics course.

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Semester 2

Compulsory

THE UNIVERSE

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This module introduces many of the fundamental concepts in astronomy, cosmology and relativity theory. It begins with classical (Newtonian) celestial mechanics, properties of stars and galaxies and some of the tools required in observation in Astronomy. Then it moves on to outline the concepts which underpin Einstein’s Special and General theories of relativity discussing events and physical phenomena from different frames of reference and in different co-ordinate systems, and the way in which mathematics relates these descriptions. Concepts of inertial frames of reference, Lorentz transformations, invariants, and elementary relativity principles and covariance, will be introduced, as well as a discussion of the ideas underpinning the general theory of relativity: principle of equivalence and curvature of space-time. Big Bang cosmology will be introduced and cover current views of the origins of the universe and its constituent parts (cosmic microwave background, inflation, black holes, dark matter and dark energy). A study of the history of astronomy and the various philosophical and scientific cosmological models throughout history will take place in a series of lectures, entitled The History of Ideas, throughout the semester as part of this module.  

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MATHEMATICAL AND COMPUTATIONAL PHYSICS

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This module builds on the Essential Mathematics module to develop further mathematical and computational skills as an aid to understanding and exploring physics concepts. The mathematics Units of Assessment are taught in lecture-based classes with associated workshop sessions, and cover multi-variable calculus, Fourier Series The computational part of the course consists of a series of assessed exercises, with classroom support, which develop computational problem solving skills, and link in with the mathematics covered elsewhere in the module and in the prerequisite module.

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PROPERTIES OF MATTER

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This module will introduce the classical physics that is relevant to gases and condensed matter, making use of the thermodynamic equations of state. The emphasis will be on the structure of matter and its relationship to mechanical and thermal properties, such as elasticity and thermal expansivity. Laws of classical thermodynamics will be introduced. The module will prepare the student for the study of solid state physics and advanced thermodynamics at Level FHEQ 5.

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ATOMS AND QUANTA

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This module identifies the new theories necessary to describe physical processes when we go beyond the normal speeds and sizes experienced in everyday life. A review of new phenomena that led to the development of quantum theory follows naturally into an introduction to the theory of atomic structure. Along the way, the Schrödinger equation is introduced and elementary applications are considered. Several important aspects of the structure and spectroscopy of atoms are considered in detail. The basis is laid for the study of the properties of matter in more detail at higher levels.

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Year 2 - BSc (Hons)

Semester 1

Compulsory

ENERGY, ENTROPY AND NUMERICAL PHYSICS

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This module considers develops both the thermodynamic and statistical descriptions of energy and entropy. In addition it builds on the introductory Level FHEQ 4 computing modules to develop the skills needed for computational physics. The module will explore various meanings and definitions of entropy. Knowledge of thermodynamics will then be applied to problem solving. The module will build upon the knowledge obtained of the laws of thermodynamics introduced in Properties of Matter at Level FHEQ 4. It will introduce additional thermodynamic theory and show how statistical physics allows us to calculate thermodynamic functions such as the entropy. The computational physics component will develop the student’s skills in solving both ordinary and partial differential equations, in the context of both quantum and thermal physics.

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ELECTROMAGNETISM, SCALAR AND VECTOR FIELDS

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The module will introduce the physical significance and the mathematical methods (and selected theorems) of the operators of vector calculus: div, grad and curl in different co-ordinate systems. The module will introduce the partial differential equations of mathematical physics and their solution for selected physical systems involving different co-ordinate systems and involving time. The module will introduce the foundations of electromagnetism, up to Gauss’ Law and Laplace’s equation, as a major application of the vector calculus and partial differential equations techniques.

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SOLID STATE PHYSICS

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This module has two independent halves, on crystallography and on optical applications of solids. - The crystallography half-module will describe crystal structures, crystalline lattices and their study with X-rays. It will introduce the concept of quantisation of lattice vibrations (phonons). - The optical applications half-module will describe band theory of solids, how it can be controlled, and how it affects the absorption, reflection, propagation, emission from molecules to nano-materials to bulk solids. Modern optical and photonic devices such as semiconductor lasers, solar cells, nuclear radiation detectors and quantum computer qubits will be introduced.

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QUANTUM PHYSICS

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The Quantum Physics course focuses on the basic formalism of quantum mechanics, its physical interpretation and its application to simple problems. The emphasis is on elementary (one-dimensional) quantum physics, including the infinite-potential well, the parabolic well, one-dimensional step and barrier potentials. 

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Semester 2

Compulsory

FROM ATOMS TO LASERS

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This module deals with the physics of atoms, including atomic spectra. It will introduce the effects on atoms due to electric and magnetic fields. The physics of diatomic molecules will be discussed, including how spectroscopic techniques can be used to study more complex molecules. Finally, by understanding how atoms interact with light, the module will introduce the principles of the laser.The module includes a laboratory component in which ideas from the lectures will be explored experimentally. 

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ELECTROMAGNETIC WAVES

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The module reprises electrostatics (Gauss’ Law) and proceeds to introduce electromagnetic theory through a development of Maxwell’s Equations and concepts associated with the electric and magnetic polarisation of materials. The module introduces electromagnetic wave theory and its applications to a range of traditional applications and problems as well as the use of Fourier processing for wave signal analysis.

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NUCLEAR AND PARTICLE PHYSICS

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The general properties of nuclei and radioactivity are studied, with an introduction to the deeper structure of elementary particles and the Standard Model. The nuclear physics includes alpha- and beta- and gamma-ray decay, nuclear fission and models of nuclear structure. The high energy physics includes the quark structure of hadrons, CPT conservation and CP violation and the impact of conservation rules on simple reactions of elementary particles.

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Optional

INTRODUCTION TO ASTRONOMY

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This module presents a complete introduction to modern astronomy and astrophysics. We start by introducing astronomy as a unique science; measurement in astronomy (position on the sky, velocity and distance); and multi-messenger probes. We then discuss acceleration due to gravity (the dominant force in the Universe) and we show that timescales are typically so long that we must use models to calculate what happened in the past and what will happen in the future. Armed with an understanding of how to make measurements in astronomy and how to model gravity, we then move from the smallest scales to the largest, studying first the interstellar medium from which stars form; stellar structure and evolution; and stellar remnants (white dwarfs, neutron stars and black holes). We compare and contrast the latest models for how planets form and we discuss the prospects for detecting life and intelligent life beyond Earth. Finally, we discuss the formation and evolution of galaxies in the Universe and the Universe as a whole. We show that the Universe appears to be mostly dark: dark matter (~22%) and dark energy (~74%). Understanding what these mysterious components are is one of the key challenges for physics in the next decade. The module includes either a computer or telescope project. Students enrolled in physics with astronomy with undertake the telescope project where (weather willing) students will gain hands on experience of taking real observational data. They will develop software tools to analyse and interpret these data and write up a final report. Students not enrolled in physics with astronomy will undertake a computational project of similar scope and length, also culminating in a final report.

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INVISCID FLUID DYNAMICS

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This module introduces students to inviscid fluid flows including surface waves. By the end of the module, students should be able to recognise dominant features of fluid motion, and to derive some simple solutions of the equations of motion. Students should also have an appreciation of the force balances that produce various classes of flows.

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Module selection for Year 2 - FHEQ Level 5

Students choose 1 optional module in semester 2

Year 3 - BSc (Hons)

Semester 1

Compulsory

FRONTIERS IN PHYSICS

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This module introduces six advanced topics in physics. Students will be assessed on only four of these topics, with individuals self-selecting the contact sessions, coursework options and exam questions that reflect their preference. An indicative list of these topics include: biological physics, special relativity, particle physics, cosmology, nuclear astrophysics, and quantum computing.

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Optional

RESEARCH TECHNIQUES IN ASTRONOMY

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In this module, students will learn key methods adopted in astrophysics to carry out advanced research: scientific computing, statistics, data analysis, machine learning. Much of the course develops highly transferrable skills that apply to science research in general. The goal is to ensure that students are well-prepared for either their research year or their future careers.

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MODERN METHODS IN EXPERIMENT AND MODELLING

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The module will introduce students to research level equipment and techniques that are used within the research groups of Physics via extended projects. The four-week projects will cover astrophysics, experimental and theoretical nuclear physics, experimental and theoretical soft matter physics, and quantum technologies. Students will gain experience using state-of-the-art equipment and software, analysing and working with large data sets and in problem solving. The module builds upon experience gained during first- and second-year laboratory and computing classes with project-based work that is typically more open ended and less structured. Students are expected to take more responsibility for the planning and direction of work than in previous years. The goal is to help prepare students for independent research within a team and for future project work (e.g. Final Year Projects and MPhys research years). Numbers will be limited on certain projects.

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SUPERCONDUCTING QUANTUM PROCESSORS

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Quantum computers are built around a central processing unit which is a physical device operating according to the rules of quantum mechanics. This module teaches the principles of how quantum processors are built and how they function. The module follows the superconducting architecture, which currently has a significant role in the industry and has been widely studied and implemented. The module will start with reviewing the basic physics required to understand superconducting qubits and the theory of superconducting circuits. It will then continue to the operation of such qubits to perform gates, storage, and readout. After studying the basic building blocks and operations, the module will discuss early demonstrations of important algorithms on superconducting processors. These will lead us naturally to the important topics of improving performance through protection of coherence, advanced control, and validation. The last part of the module will focus on state-of-the-art superconducting processors, focusing on the various challenges in scaling up and the strategies that the industry is pursuing to overcome them.

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FINANCIAL METHODS AND QUANTUM OPTIMISATION

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The first half of this module covers various applications of statistical physics to model share prices and financial markets. This mathematics is then applied to calculating prices for some examples of financial derivatives. The second half of the module then focusses on optimization problems with examples including logistics, aerospace, traffic control and finance (which includes pricing, risk managements and portfolio optimizations in financial markets). There is a particular focus on the role of quantum optimization and the use of quantum computer algorithms in finance.

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MATHEMATICAL METHODS

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This module introduces students to a range of mathematical methods and illustrates their application to real-world problems. Students will be introduced to residue calculus, integral transforms, variational calculus, and asymptotic approximations. Students will revise and extend their knowledge of methods of solving ordinary and partial differential equations.

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Semester 2

Compulsory

FINAL YEAR PROJECT

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This 30 credit project module is designed to give students the opportunity to explore an area of interest in physics in some depth, either through experimental, theoretical or computational means, or in the form of a literature survey.  The module also develops generic professional skills such as teamwork, scientific writing and professional ethics.  The module involves writing a dissertation and an oral assessment  

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ADVANCED NUCLEAR ASTROPHYSICS

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This module aims to provide an advanced level understanding of the physics of stars and nuclear astrophysics. In particular, the course will provide an understanding of advanced nucleosynthetic pathways, an analytical underpinning of resonant reaction rates, together with the experimental techniques involved in their determination.

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Optional

MEDICAL IMAGING

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The course will follow the historical development of the main medical imaging techniques.The first part will consider, from a theoretical perspective, the fundamentals of X-ray image formation both in the planar modality and in the Computed Tomography modality. Elements of image processing and image reconstruction will be addressed.The second will look at the physical principles and methods of Nuclear Medicine.The third will look at the principles underlying the application of diagnostic ultrasound in medicine.The fourth will consider Magnetic Resonance Imaging (MRI), one of the most important techniques of medical imaging used in hospitals today.In parallel to the related theoretical classes, students will do X-ray imaging modelling sessions and ultrasound practicals.

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STEM EDUCATION AND PUBLIC ENGAGEMENT

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The module will introduce students to key concepts in education as well as the tools and strategies for effective public engagement in their discipline areas and for different audiences. Students will gain practical experience by planning, implementing, and evaluating an education or public engagement-based activity. Opportunities will also exist for classroom (e.g. school; early-year University) teaching experience and / or involvement in external exhibitions. The projects will be related to current Faculty, department and / or outreach needs thus leading to informed student partnership activities.

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SEMICONDUCTOR DEVICES AND OPTOELECTRONICS

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Expected prior learning:  Module EEE2042 – Electronic and Photonic Devices, or equivalent learning, is advisory but not required. Module purpose:  Semiconductor devices and optoelectronics play a major technology enabling amongst other things the internet. The course is given via a series of lectures and aims to give a background to the interaction of light with key photonic materials and devices. This module will introduce students to modern energy efficient electronic and photonic devices concentrating on the fundamental science of operation, device structure and characteristics.

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QUANTUM COMPUTATION

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This module covers circuit-based quantum computers and some of the algorithms that can be implemented using them. The idea of a classical computational algorithm and its complexity is introduced, and used as a language to discuss quantum computational algorithms. Components of quantum circuits are discussed individually, and then built up to show how algorithms such as the quantum Fourier transform and Grover's search algorithm can be implemented, and how such algorithms can be used in applications such as factorizing integers using Shor's algorithm. A suitable computational framework is introduced and used as a tool to implement the algorithms on simulated quantum computers.

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RADIOACTIVITY AND NUCLEAR METROLOGY

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The module provides a Level 6 (final year) introduction to the sources of radioactive materials, how they are produced and their accurate measurement. This module will also give detailed information on the sources and uses of radioactive materials for environmental, medical and industrial medical applications. The is aimed at both students studying at Level 6 or 7 in Physical Science (Physics, Chemistry etc,.) or related Engineering (e.g. Chemical or Environmental Engineering) subject. It will also serve as key, underpinning material for graduates with non-physics first degrees (e.g. Engineering, Chemistry, Mathematics etc,) to provide a foundation in the measurement and characterization of radioactive sources.

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Module selection for Year 3 - FHEQ Level 6

Students choose 2 optional modules in semester 1 and 1 optional module in semester 2

Teaching and learning

Computers are used extensively, as teaching aids through self-learning packages, in the laboratory for experimental control and data analysis, in modelling of physical problems, and for effective communication.

Eight practical laboratory half-modules are designed to introduce particular elements of physics, experimental design, data analysis, background research and technical writing. A ninth module introduces computational modelling, the topic of which can be based upon your personal interests.

The core physics curriculum is covered in the first two years.

In Year 1, your practical skills are developed through laboratory-based teaching sessions designed to introduce experimental design, data analysis, and preparatory research and risk assessment. Your communication skills are developed through technical report writing and oral presentations.

You’ll then start to shape your course by selecting from a group of optional modules, taken at the end of the second year and throughout the third year. Our specialist modules reflect the research interests of the Department – ranging from astronomy and nuclear astrophysics, to quantum light and matter.

You can also select more practical modules with laboratory-focused teaching methods, or theoretical modules with mathematical and computational-based assignments.

Learning methods

  • Laboratory work
  • Lectures
  • Practical sessions
  • Tutorials
  • AI learning

Assessment

We use a variety of methods to assess you, including:

  • Coursework
  • Essays
  • Examinations
  • Presentations.

General course information

Contact hours

Contact hours can vary across our modules. Full details of the contact hours for each module are available from the University of Surrey's module catalogue. See the modules section for more information.

Timetable

New students will receive their personalised timetable during Welcome Week. In later semesters, at least one week before the start of the semester.

Scheduled teaching can take place on any day of the week (Monday – Friday), with part-time classes normally scheduled on one or two days. Wednesday afternoons tend to be for sports and cultural activities.

View our code of practice for the scheduling of teaching and assessment (PDF) for more information.

Location

This course is based at Stag Hill campus. Stag Hill is the University's main campus and where the majority of our courses are taught. 

Career opportunities

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We offer careers information, advice and guidance to all students whilst studying with us, which is extended to our alumni for three years after leaving the University.

95%

Of our maths and physics graduates are in employment or further study within 15 months of graduating (Graduate Outcomes Survey 2026, HESA)

Our physicists are highly sought after in industry, research, education, management, medicine, law and business because of their broad practical and numeracy skills, coupled with advanced scientific knowledge.

As a Surrey physics student, you’ll acquire a range of employability skills during your studies. You’ll take a dedicated Year 1 module – Scientific Investigation Skills – which covers key communication skills, group work and presentations, plus problem-solving in the laboratory. We also support you with building your CV, interview preparation and job applications.

Students who take either the Professional Training placement or Research Year placement gain invaluable employment experience at their host institution.

Recent graduate roles

Our recent physics and astrophysics degree graduates are now employed at companies such as:

  • CGI
  • Aktins
  • DSTL
  • National Physical Laboratory
  • Raytheon Systems Ltd
  • FibreFab Ltd
  • NHS.

Recent graduates are now entering employment in roles such as: Automation Tester, Graduate Engineer, Graduate Physicist, Research Scientist RF and Microwave Metrologist, System Analyst, Trade Compliance Analyst, and Trainee Clinical Scientist.

Further education opportunities

Many of our graduates take masters courses in a range of subjects, such as geophysics, nanotechnology, meteorology, quantum field theory, education management and science communication.

Others, particularly those with an MPhys, choose to pursue PhDs in astrophysics, materials science, nuclear physics, and semiconductors and photonics.

Facilities

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We have state-of-the-art laboratories and equipment to enhance other student learning opportunities and research. This includes:

  • Characterisation laboratories
  • Detector preparation laboratories
  • Ellipsometry equipment
  • High-performance computing clusters
  • Magnetic resonance imaging facilities
  • Microscopes and spectrometers
  • Nuclear magnetic resonance facilities
  • Radiation and medical physics facilities
  • Soft matter laboratories
  • Teaching and outreach telescope.

We also share facilities with Surrey’s acclaimed Advanced Technology Institute, which conducts world-leading research in energy generation and storage, nanotechnology, healthcare, information technology and sustainable technology.

Our Experimental Nuclear Physics Group has access to facilities at prestigious institutions around the globe. These include:

Physics Radiation Labs

Physics facilities tour

Join us on a virtual tour of some of the leading physics facilities at Surrey, including the undergraduate labs and campus observatory.

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Physics facilities tour

Join us on a virtual tour of some of the leading physics facilities at Surrey, including the undergraduate labs and campus observatory.

Hear from our students

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Entry requirements

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Learn more about the qualifications we typically accept to study this course at Surrey.


Typical offer

A-level

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  • BSc (Hons):
    • ABB
    • Required subjects: mathematics and physics.
  • MPhys:
    • AAA-AAB
    • Required subjects: mathematics grade A and physics.
  • BSc (Hons) with Foundation Year:
    • CCC
    • Required subjects: mathematics and one of Chemistry, Computer Science, Electronics, Further Maths or Physics.

A-level General Studies and A-level Critical Thinking are not accepted. Applicants taking the Science Practical Endorsement are expected to pass.

GCSE or equivalent: English Language at grade 4 (C).

BTECs

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  • BSc (Hons):
    • DDD. Additionally, A-level mathematics grade B.
    • Required subjects: BTEC Extended Diploma must be in a relevant subject.
  • MPhys:
    • D*DD. Additionally, A-level mathematics grade A.
    • Required subjects: BTEC Extended Diploma must be in a relevant subject.
  • BSc (Hons) with foundation year:
    • DMM.
    • Required subjects: BTEC Extended Diploma in Advanced Manufacturing Engineering, Aeronautical Engineering, Electrical and Electronic Engineering, Mechanical Engineering.
    • Additionally, a Distinction in one of the following modules: Mathematics for Engineering Technicians, Calculus to Solve Engineering Problems, Further Engineering Mathematics.

GCSE or equivalent: Maths at grade 7 and English language at grade 4 (C)

Please see the alternative qualifications guidance if you are taking a mixture of BTECs and A-levels or if you are taking other qualification types.

International Baccalaureate Diploma

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  • BSc (Hons):
    • 33
    • Required subjects: Physics HL5/SL6 and either Mathematics Analysis and Approaches HL5/SL6 or Mathematics Applications and Interpretations HL5.
  • MPhys:
    • 35 - 34
    • Required subjects: Physics HL5/SL6 and either Mathematics Analysis and Approaches HL6/SL7 or Mathematics Applications and Interpretations HL6.
  • BSc (Hons) with Foundation Year:
    • 29
    • Required subjects: Mathematics analysis and approaches HL4/SL6 or mathematics applications and interpretations HL4; and additionally one of Chemistry, Computer Science, or Physics HL4/SL6.

GCSE or equivalent: English A HL4/SL4 or English B HL5/SL6.

European Baccalaureate

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  • BSc (Hons):
    • 78%
    • Required subjects: Mathematics (5 period) 7.5 and Physics 7.5.
  • MPhys:
    • 85%-82%
    • Required subjects: Mathematics (5 period) 8.5 and Physics 7.5.
  • BSc (Hons) with Foundation Year:

GCSE or equivalent: English Language (1/2) - 6 English Language (3) - 7.

Access to HE Diploma

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  • BSc (Hons):
    • QAA recognised Access to Higher Education Diploma with 45 level 3 credits overall including 30 at Distinction and 15 at Merit. 
    • Required subjects: Access to Higher Education modules must be in relevant subjects.
  • MPhys:
    • QAA recognised Access to Higher Education Diploma with 45 level 3 credits overall including 45 at Distinction or 39 at Distinction and 6 at Merit. 
    • Required subjects: Access to Higher Education modules must be in relevant subjects.
  • BSc (Hons) with Foundation Year:
    • ​​​QAA recognised Access to Higher Education Diploma with 45 level 3 credits overall including 21 credits at Distinction, 3 credits at Merit and 21 credits at Pass. Additionally, A-level Mathematics at grade C.
    • Required subjects: Access to Higher Education modules must be in relevant subjects.

GCSE or equivalent: English Language at grade 4 (C).

Scottish Highers

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  • BSc (Hons):
    • AABBB
    • Required subjects: mathematics and physics.
  • MPhys:
    • AAAAB-AAABB
    • Required subjects: mathematics grade A and physics.
  • BSc (Hons) with Foundation Year:
    • BBBCC
    • Required subjects: mathematics and Chemistry, Computer Science, Further Maths or Physics.

GCSE or equivalent: Scottish National 5 for English Language grade C.

Welsh Baccalaureate

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  • BSc (Hons):
    • ABB from a combination of the Advanced Skills Baccalaureate Wales and two A-levels.
    • Required subjects: A-levels in mathematics and physics.
  • MPhys:
    • AAA-AAB from a combination of the Advanced Skills Baccalaureate Wales and two A-levels.
    • Required subjects: A-level mathematics at grade A and A-level physics.
  • BSc (Hons) with Foundation Year:
    • CCC from a combination of the Advanced Skills Baccalaureate Wales and two A-levels.
    • Required subjects: mathematics and one of Chemistry, Computer Science, Electronics, Further Maths or Physics.

A-level General Studies and A-level Critical Thinking are not accepted.

GCSE or equivalent: English Language at grade 4 (C).

Extended Project Qualification (EPQ)

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This route is only applicable to the MPhys course.

Applicants taking the Extended Project Qualification (EPQ) will receive our standard A-level offer, plus an alternate offer of one A-level grade lower, subject to achieving an A grade in the EPQ. The one grade reduction will not apply to any required subjects.

This grade reduction will not combine with other grade reduction policies, such as contextual admissions policy or In2Surrey.

T Level

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BSc (Hons) with foundation year:

  • T – Level with an overall grade of Pass and a grade of D in the Core Component
  • Required subjects: Design and Development for Engineering and Manufacturing, Maintenance, Installation and Repair for Engineering and Manufacturing, and Engineering, Manufacturing, Processing and Control.

GCSE or equivalent: Maths at grade 7 and English language at grade 4 (C).

Country-specific qualifications

International students in the United Kingdom

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English language requirements

IELTS Academic: 6.0 overall with 5.5 in each element.

View the other English language qualifications that we accept.

If you do not currently meet the level required for your programme, we offer intensive pre-sessional English language courses, designed to take you to the level of English ability and skill required for your studies here.

International Foundation Year

If you are an international student and you don’t meet the entry requirements for this degree, we offer the International Foundation Year at the Surrey International Study Centre. Upon successful completion, you can progress to this degree course.

More information

Selection process

We normally make offers in terms of grades.

If you are a suitable candidate you will be invited to an offer holder event. During your visit to the University you can find out more about the course and meet staff and students.

Credit Transfer and Recognition of Prior Learning

View our Code of practice for Recognition of Prior Credit and Prior Learning and further guidance: Credit Transfer and Recognition of Prior Learning - Guide for Applicants (PDF) for more information.

We recognise that many students enter their higher education course with valuable knowledge and skills developed through a range of professional, vocational and community contexts.  

If this applies to you, the recognition of prior learning (RPL) process may allow you to join a course without the formal entry requirements or enter your course at a point appropriate to your previous learning and experience. There are restrictions on RPL for some courses and fees may be payable for certain claims.  

Contextual offers

Did you know eligible students receive support through their application to Surrey, which could include a grade reduction on offer?

About contextual offers

Fees and funding

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Fees for the 2027-28 academic year

Explore UKCISA’s website for more information if you are unsure whether you are a UK or overseas student. View the list of fees for all undergraduate courses.

Standard year
£10,050
Foundation year
£10,050
Professional training year
£2,010
Standard year
£28,100
Foundation year
£28,100
Professional training year
£2,010

Professional training placement year fees are approximately 20% of the full-time UK fees of the academic year in which you undertake your placement.

Payment schedule

  • Students with Tuition Fee Loan: the Student Loans Company pay fees in line with their schedule. 
  • Students without a Tuition Fee Loan: pay their fees either in full at the beginning of the programme or in two instalments as follows:
    • 50% payable 10 days after the invoice date (expected to be during October to November of each academic year).
    • 50% in January of the same academic year. 
  • The exact date(s) will be on invoices. Students on part-time programmes where fees are paid on a modular basis cannot pay fees by instalment. 
  • Sponsored students: must provide us with valid sponsorship information that covers the period of study. 

Placements and study abroad

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Our award-winning Professional Training placement scheme gives you the chance to spend a year in industry, either in the UK or abroad.

We have thousands of placement providers to choose from, most of which offer pay. So, become one of our many students who have had their lives and career choices transformed.

Statistics

Placement Statistics

92%

of students who did a placement entered into graduate level employment*

80%

of placements are paid, with 60% paying between £18,000 - £30,000

48%

of our students have been offered a graduate role from their placement provider**

*Graduate Outcomes 2025, HESA

**Professional training year returners survey 2024

Physics with nuclear astrophysics placements

Our Physics with Nuclear Astrophysics BSc students have the option of taking a Professional Training placement, which can add real value to their learning experience. Check out our video below to see how Surrey students have thrived on placement, gaining the skills and experience which employers are looking for.

Over the years, we’ve placed our students with many companies and laboratories, including:

  • Central Laser Facility (CLF) at the Rutherford Lab
  • Defence Science and Technology Laboratory
  • InSync Technologies Ltd
  • MBDA UK Ltd
  • National Physical Laboratory
  • Plasma Quest
  • Regional Radiation Protection Service.

Your personal tutor and the Professional Training tutor will discuss your interests and abilities with you in the second year, and support you in applying to our extensive database of potential employers.

Every October, we hold a Professional Training placement conference, which allows students to hear first-hand experiences from the previous year’s placement students.

Applying for placements

Students are generally not placed by the University. But we offer support and guidance throughout the process, with access to a vacancy site of placement opportunities.

Find out more about the application process.

Research Year placements

Unique to Surrey, our MPhys includes an integrated Research Year which can be completed at Surrey, at a research institution in the UK or internationally.

Past students have undertaken year-long research projects at some of the following:

  • CERN, Switzerland
  • ORNL in Tennessee, US
  • TRIUMF in Vancouver, Canada
  • University of Marburg, Germany
  • University of Notre Dame, Indiana, US
  • WNSL, Yale University, US.

All of these research projects involve real cutting-edge research with internationally respected scientists. Most off-campus placements come with a student stipend.

Summer placements

All students have the chance to apply for an 8-10 week paid placement during the summer, typically at the end of their second year. They offer an invaluable taste of real research, as well as adding to your CV.

Placements are available both within the University (ranging from nanotechnology experiments to theoretical quantum physics) and via the South East Physics Network (SEPnet).

Examples of placements students have undertaken are:

  • BAE Systems
  • Rutherford Appleton Laboratory in Oxfordshire (the UK’s largest scientific facility)
  • The Royal Marsden Hospital (one of the world’s leading cancer research hospitals).
Telescope on hill at night with stars shining

Placement at the Institute of Astrophysics in Spain

Anastasia Gvozdenko, one of our MPhys students, chats to us about her research year at the Instituto de Astrofísica de Canarias (the Institute of Astrophysics in Spain, based in Tenerife).

Play video

Placement at the Institute of Astrophysics in Spain

Anastasia Gvozdenko, one of our MPhys students, chats to us about her research year at the Instituto de Astrofísica de Canarias (the Institute of Astrophysics in Spain, based in Tenerife).


Study and work abroad

Studying at Surrey opens a world of opportunity. Take advantage of our study and work abroad partnerships, explore the world, and expand your skills for the graduate job market. 

The opportunities abroad vary depending on the course, but options include study exchanges, work/research placements, summer programmes, and recent graduate internships. Financial support is available through various grants and bursaries, as well as Student Finance. 

Perhaps you would like to volunteer in India or learn about Brazilian business and culture in São Paulo during your summer holidays? With 140+ opportunities in 36+ different countries worldwide, there is something for everyone. Explore your options via our search tool and find out more about our current partner universities and organisations. 

Register your interest

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Apply

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Apply for your chosen course online through UCAS, with the following course and institution codes.

Institution code S85

Course UCAS code
BSc (Hons) F3F5
BSc (Hons) with foundation year F308
BSc (Hons) with placement F3F6
BSc (Hons) with foundation year and placement F309
MPhys F3FM

Terms and conditions

When you accept an offer to study at the University of Surrey, you will be agreeing to follow our policies and procedures, student regulations, and terms and conditions.

We provide these terms and conditions at the offer stage. You will be asked to accept these when you accept the offer made to you. You will be provided with these terms and conditions again at registration by way of reminder.

Disclaimer

This online prospectus has been published in advance of the academic year to which it applies.

Whilst we have done everything possible to ensure this information is accurate; some changes may happen between publishing and the start of the course.