Fall 2021 

Engineering 79 — Introduction to Engineering Systems
An introduction to the concepts of modern engineering, emphasizing modeling, analysis, synthesis, design, and control. Applications to mechanical and electrical systems. Prerequisites: Mathematics 45 and Physics 24. 
Physics 23 — Special Relativity
Einstein's special theory of relativity is developed from the premises that the laws of physics are the same in all inertial frames and that the speed of light is a constant. The relationship between mass and energy is explored and relativistic collisions analyzed. The families of elementary particles are described and the equivalence principle developed. 
Physics 50 — Physics Laboratory
This course emphasizes the evidencebased approach to understanding the physical world through handson experience, experimental design, and data analysis. Experiments are drawn from a broad range of physics subjects, with applications relevant to modern society and technology.

Physics 51 — Electromagnetic Theory and Optics
An introduction to electricity and magnetism leading to Maxwell's electromagnetic equations in differential and integral form. Selected topics in classical and quantum optics. 
Physics 111 — Theoretical Mechanics
The application of mathematical methods to the study of particles and of systems of particles; Newton, Lagrange, and Hamilton equations of motion; conservation theorems; central force motion, collisions, damped oscillators, rigid body dynamics, systems with constraints, variational methods.

Physics 117 — Statistical Mechanics
Classical and quantum statistical mechanics, including their connection with thermodynamics. Kinetic theory of gases. Applications of these concepts to various physical systems.

Physics 133 — Electronics Laboratory
An intermediate laboratory in electronics involving the construction and analysis of rectifiers, filters, transistor and operational amplifier circuits.

Physics 147 — Materials Science for Energy Conversion and Storage
Materials science of energy conversion and storage, dealing with photovoltaics, fuel cells, batteries, thermoelectrics, and other devices. Seminar format.

Physics 151 — Electromagnetic Fields
The theory of static and dynamic electromagnetic fields. Topics include multipole fields, Laplace's equation, the propagation of electromagnetic waves, radiation phenomena and the interaction of the electromagnetic field with matter.

Physics 161 — Topics in Quantum Theory
Scattering, including the Born approximation and partial wave expansion. Path integrals. Timedependent perturbation theory. Quantum theory of the electromagnetic field.

Physics 181 — Advanced Laboratory
Experiments are selected from the fields of nuclear and solidstate physics, biophysics, quantum mechanics and quantum optics, and atomic, molecular and optical physics. Fasttime coincidence instrumentation and photoncounting detectors are employed, as well as an Xray machine and a UV/VIS/ NIR spectrophotometer.

Physics 183 — Teaching Internship
An Introduction to K–12 classroom teaching and curriculum development. Internship includes supervision by an appropriate K–12 teacher and a member of the physics department and should result in a report of a laboratory experiment, teaching module, or other education innovation or investigation. Internship includes a minimum of three hours per week of classroom participation.

Physics 193 — Physics Clinic
Team projects in applied physics, with corporate affiliation.

Physics 195 — Physics Colloquium
Oral presentations and discussions of selected topics, including recent developments. Participants include physics majors, faculty members, and visiting speakers. Required for all junior and senior physics majors. No more than 2.0 credits can be earned for departmental seminars/colloquia.

Writing 1 — Introduction to Academic Writing
A seminar devoted to effective writing strategies and conventions that apply across academic disciplines. The course emphasizes clarity, concision, and coherence in sentences, paragraphs, and arguments. 
Spring 2022 

Astronomy 62 — Introduction to Astrophysics
A general survey of modern astrophysics. Topics covered include electromagnetic radiation, gravitation, stellar structure and evolution, the interstellar medium and the birth of stars, supernovae and the death of stars (including the physics of neutron stars and black holes), synthesis of the elements, and the formation, structure and evolution of galaxies and of the universe. Offered jointly with Pomona and Keck Sciences.

c179a — STEM and Social Impact: Climate Change
In this course our focus is to prepare Harvey Mudd students for the lifelong challenge of fostering "a clear understanding of the impact of their work on society." We will use climate change as an opportunity to explore the impact of our work on society. There are four primary components of that exploration: critical analysis of the social context of STEM, the expansion and application of concepts from the core to understand this socialtechnical problem, collaborative projects that promote positive change in the world, and communicating our project designs and professional choices. Plenary sessions will explore topics such as environmental justice, earth system science, the relation between expertise and power, policy processes, data science, community engagement, multidisciplinary collaboration, impactful careers, and science communication. Individual sections will explore particular climaterelated issues in greater depth. Final team projects will challenge students to apply these concepts in proposals for climate solutions. Open to HMC students only. Open to sophomores; juniors and seniors by permission. Counts as a departmental HSA course. 
c179b — Climate Change in Context
This version of the "impact course" leverages knowledge and skills developed in the Core to understand the roots and possible remedies for climate change from a variety of intersecting perspectives. Particular attention will be given to the historical, cultural, and economic contexts of anthropogenic climate change as frameworks within which technological and political solutions must operate. We expect this course to meet once weekly, likely in the evening. Content will be roughly balanced between STEM and humanistic/social scientific approaches. Assessments will likely include problem sets, short response papers, class debates, and a final project. Weekly meetings will include small group work as well as lecture/discussion. Open to HMC students only. Open to sophomores; juniors and seniors by permission. Countas as departmental HSA course. 
Physics 24 — Mechanics and Wave Motion
Classical mechanics is introduced beginning with inertial frames and the Galilean transformation, followed by momentum and momentum conservation in collisions, Newton's laws of motion, spring forces, gravitational forces and friction. Differential and integral calculus are used extensively throughout. Work, kinetic energy and potential energy are defined, and energy conservation is discussed in particle motion and collisions. Rotational motion is treated, including angular momentum, torque, crossproducts and statics. Other topics include rotating frames, pseudoforces and centralforce motion. Simple harmonic and some nonlinear oscillations are discussed, followed by waves on strings, sound and other types of waves, and wave phenomena such as standing waves, beats, twoslit interference, resonance and the Doppler effect.

Physics 24A — Mechanics and Wave Motion
Kinematics, dynamics, linear and angular momentum, work and energy, harmonic motion, waves and sound.

Physics 50 — Physics Laboratory
This course emphasizes the evidencebased approach to understanding the physical world through handson experience, experimental design, and data analysis. Experiments are drawn from a broad range of physics subjects, with applications relevant to modern society and technology.

Physics 52 — Quantum Physics
The development and formulation of quantum mechanics, and the application of quantum mechanics to topics in atomic, solid state, nuclear, and particle physics.

Physics 54 — Modern Physics Lab
Classical experiments of modern physics, including thermal radiation and Rutherford scattering. Nuclear physics experiments, including alpha, beta and gamma absorption, and gamma spectra by pulse height analysis. Analysis of the buildup and decay of radioactive nuclei.

Physics 84 — Quantum Information
Quantum computation and communication. Fundamentals of discretestate quantum mechanics as appropriate for quantum information science. Possible topics include universal logic gates for quantum computing, quantum computing algorithms, quantum error correction, quantum cryptography and communication, adiabatic quantum computing, and hardware platforms for quantum computation and communication.

Physics 116 — Quantum Mechanics
The elements of nonrelativistic quantum mechanics. Topics include the general formalism, onedimensional and threedimensional problems, angular momentum states, perturbation theory and identical particles. Applications to atomic and nuclear systems.

Physics 134 — Optics Laboratory
A laboratorylecture course on the techniques and theory of classical and modern optics. Topics of study include diffraction, interferometry, Fourier transform spectroscopy, grating spectroscopy, lasers, quantum mechanics and quantum optics, coherence of waves and leastsquares fitting of data.

Physics 156 — Classical Field Theory
This course explores concepts, methods, and applications of the classical theory of fields. On the physics side, we will learn about cosmological inflation, superconductivity, electroweak theory, solitons, the nuclear force, and magnetic monopoles. On the mathematics side, we will learn the basics of differential geometry and Lie algebras. Throughout the course, we will emphasize the unity of physical principles and techniques across a wide range of systems and disciplines.

Physics 164 — Particle Physics
Topics in highenergy physics including the fundamental interactions, spacetime symmetries, isospin, SU(3) and the quark model and the Standard Model.

Physics 166 — Geophysics
Special topics in geophysical methods and their application to construction of earth models.

Physics 170 — Computational Methods in Physics
Typical numerical methods for solving a wide range of problems of current interest in physics. Examples are drawn from mechanics, electromagnetism, quantum mechanics, statistical mechanics, solid state and chemical physics.

Physics 172 — General Relativity and Cosmology
The principle of equivalence, Riemannian geometry, and the Schwarzschild and cosmological solutions of the field equations.

Physics 194 — Physics Clinic
Team projects in applied physics, with corporate affiliation.

Physics 196 — Physics Colloquium
Oral presentations and discussions of selected topics, including recent developments. Participants include physics majors, faculty members, and visiting speakers. Required for all junior and senior physics majors. 