UnitLevel 2Undergraduate

PHS2061 Quantum and thermal physics

Faculty of Science

PHS2061 Quantum and thermal physics is a level 2, 6-credit-point, undergraduate unit from the Faculty of Science, offered in 2024 in Semester 1 at Clayton. It has no prerequisites and unlocks 2 units, leading on to 5 units in all.

Credit points
6
Offered in 2024
Semester 1
Clayton
Assessment
Exam 40%
and 3 other tasks

This is the 2024 handbook entry. See the 2027 entry.

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Requisites

Before PHS2061

No prerequisites or corequisites besides the enrolment rules below.

After PHS2061

2 units list PHS2061 as a prerequisite or corequisite.

Enrolment rules

PREREQUISITE: One unit from PHS1022, PHS1002 and one unit from MTH1030, MTH1035 or ENG1005

COREQUISITE: Recommended: MTH2010 or MTH2015 or ENG2005

Note: supporting mathematics studies are required for progression towards the Astrophysics and Physics majors

PROHIBITION: PHS2011

Overview

Quantum physics is at the core of physics and this unit provides a basis for understanding key quantum concepts, applications and associated phenomena. Thermal physics aims to understand how energy resides in matter as thermal energy, how energy moves irreversibly as heat between bodies at different temperatures, and how heat flow arises from entropy and the second law of thermodynamics; entropy is defined carefully in terms of the multiplicity of microstates of a system. Thermal physics explores how work can be interconverted with thermal energy and how entropy limits the efficiency of engines, heat pumps and refrigerators.

  1. Quantum mechanics: the domain of quantum mechanics; particle and wave description; the Schrodinger equation, energy, momentum and angular momentum as operators, expectation values and stationary states; one-dimensional scattering and potentials, including the quantum oscillator, quantum mechanical tunnelling and quantum technologies; Heisenberg's uncertainty principle.
  2. Thermal physics: review of heat, work and internal (thermal) energy, phase transitions, latent heats and heat capacities; the inadequacy of heat capacities as a basis for thermometry; statistical descriptions of a macroscopic physical system: microstates, macrostates, multiplicity and entropy; the second law of thermodynamics; absolute temperature related to entropy; pressure related to entropy; review of PV diagrams and work in thermodynamics, especially as applied to ideal gases; adiabatic and isothermal processes; introduction to engines and the Carnot cycle; examples of thermodynamic cycles in applications; heat pumps and refrigerators; the Helmholtz free energy and an introduction to the Maxwell-Boltzmann distribution, the exponential atmosphere and Boltzmann factors; inter alia Maxwell's daemon, the thermodynamics of computation and the heat death of the Universe.

Offerings in 2024

Teaching periodCampusMode
First semesterClaytonOn campus

Assessment

  • LaboratoriesOtherThreshold hurdle
    30%
  • Computational applied classesOther
    10%
  • Assignments and quizzesAssignment
    20%
  • Examination (3 hours and 10 minutes)Exam
    40%

Learning outcomes

When you finish this unit, you should be able to:

  1. 1

    Describe and perform calculations appropriate to key concepts in quantum mechanics, including the foundations of quantum mechanics and a wide variety of quantum systems in 1D, 2D and 3D;

  2. 2

    Describe and perform calculations related to thermal physics and statistical thermodynamics, including a foundational understanding of temperature, energy, heat and work, and its applications to heat pumps and engines, entropy and information;

  3. 3

    Apply numerical modelling to solve problems in quantum mechanics and thermal physics;

  4. 4

    Demonstrate awareness of scientific computing methods and visualization;

  5. 5

    Acquire, manipulate and interpret physical data and write scientific log books and lab reports.

Workload and teaching

  • Workshops18 hours
  • Laboratories16 hours
  • Applied sessions12 hours
  • Teaching approachActive learning
  • Teaching approachProblem-based learning

The workload to achieve the learning outcomes for this unit is 144 hours spread across the semester (roughly 12 hours per week) - approximately an even mixture of attendance at scheduled activities and self-scheduled study time. Learning activities comprise a mixture of instructor-directed, peer-directed and self-directed learning, which includes face-to-face and online engagement.

Laboratories – The laboratories serve a dual purpose: they help you develop a range of experimental, analytical and communication skills, and they reinforce and extend topics covered in lectures.

Computational applied sessions – The number of real-life problems solvable on a whiteboard is limited. Most analysis, both in industry and in physics research, involves computer modelling. The workshops introduce
you to the modern discipline of computational physics and foster deeper understanding of the corresponding lecture material in an enjoyable manner. You will use visual graphing, dynamic interactive displays, symbolic/analytic
problem solving and numerical computation to explore a wide variety of problems in great depth, and create some new computer code along the way. The platform is Wolfram’s Mathematica. You will work independently, but collaborative discussions are encouraged and further assistance is provided by in-class TAs.

Lectures (video resources) – The unit consists of two topics: Quantum mechanics and thermal physics. Lecture notes and/or slides for each topic will become available via Moodle, and you are encouraged to read ahead of the lectures. Problems sets highlighting consequences of the theory and giving you practice in applying it are also available on Moodle. The standard of problems and assignments is largely typical of that required in the examinations. Solutions to selected problems, assignments and past exams will be posted on Moodle at appropriate times during semester, enabling you to check your progress.

Problem-solving workshops – These allow you to practise working through real problems in an environment where you are able to enrich your learning through discussions with your peers, TAs and lecturer. Assessment activities will take place during all these workshops.

Learning resources

Required resources

Daniel V Schroeder's "An introduction to thermal physics " is prescribed for the Thermal Physics topic.

Technology resources

Experimental laboratory classes make use of python – we encourage use of the freely available Anaconda distribution (for installation instructions see the Python revision Moodle book https://lms.monash.edu/mod/book/view.php?id=6599583

Computational applied sessions are based on Mathematica (for installation instructions see the Monash Software Catalogue <https://www.monash.edu/esolutions/software/mathematica-install> ).

Where it fits

PHS2061 is part of 4 areas of study in the 2024 handbook.

Contacts

Chief Examiners
Dr Scott Findlay
Unit Coordinators
Dr Scott Findlay

Common questions

What are the prerequisites for PHS2061?

PHS2061 has no prerequisites, but enrolment rules apply.

What can I take after PHS2061?

PHS2061 is a prerequisite or corequisite for 2 units, including PHS3000 and PHS3101. Those lead on to 5 units in all.

When is PHS2061 offered?

In 2024, PHS2061 runs in Semester 1 at Clayton.

Does PHS2061 have an exam?

Yes. The exam is worth 40% of the final mark, alongside 3 other tasks.

Which majors and minors include PHS2061?

PHS2061 is part of Astrophysics and Physics.

More details

Credit points
6
Level
2
Study level
Undergraduate
Faculty
Faculty of Science
Organisational unit
School of Physics and Astronomy
Type
Coursework
EFTSL
0.125
Student contribution
SCA Band 2
Study abroad
Available