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Ch 164: Introduction to Statistical Thermodynamics
9.00 Credits
California Institute of Technology
An introduction to the fundamentals and simple applications of statistical thermodynamics. Foundation of statistical mechanics; partition functions for various ensembles and their connection to thermodynamics; fluctuations; noninteracting quantum and classical gases; heat capacity of solids; adsorption; phase transitions and order parameters; linear response theory; structure of classical fluids; computer simulation methods. Instructors: Wang, Miller.
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Ch 164 - Introduction to Statistical Thermodynamics
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Ch 165: Chemical Thermodynamics
9.00 Credits
California Institute of Technology
An advanced course emphasizing the conceptual structure of modern thermodynamics and its applications. Review of the laws of thermodynamics; thermodynamic potentials and Legendre transform; equilibrium and stability conditions; metastability and phase separation kinetics; thermodynamics of single-component fluid and binary mixtures; models for solutions; phase and chemical equilibria; surface and interface thermodynamics; electrolytes and polymeric liquids. Instructor: Wang.
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Ch 165 - Chemical Thermodynamics
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Ch 166: Nonequilibrium Statistical Mechanics
9.00 Credits
California Institute of Technology
Transport processes in dilute gases; Boltzmann equation; Brownian motion; Langevin and Fokker-Planck equations; linear response theory; time-correlation functions and applications; nonequilibrium thermodynamics. Instructor: Marcus.
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Ch 166 - Nonequilibrium Statistical Mechanics
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Ch 170 abc: Biochemistry and Biophysics of Macromolecules and Molecular Assemblies
9.00 Credits
California Institute of Technology
First term: detailed analysis of the structures of the four classes of biological molecules and the forces that shape them. Introduction to molecular biological and visualization techniques. Second term: basic principles of modern biophysical and structural methods to interrogate macromolecules from the atomic to cellular levels, including X-ray crystallography, NMR spectroscopy, molecular dynamics, electron and light microscopy, AFM, single molecule techniques, and systems biological simulations. Third term: detailed analysis of specific macromolecular machines and systems that illustrate the principles and biophysical methods taught in the first two terms. Instructors: Clemons, Jensen, Shan, Hoelz,staff.
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Ch 170 abc - Biochemistry and Biophysics of Macromolecules and Molecular Assemblies
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Ch 171: Atmospheric Chemistry I
9.00 Credits
California Institute of Technology
A detailed course about chemical transformation in Earth’s atmosphere. Kinetics, spectroscopy, and thermodynamics of gas-phase chemistry of the stratosphere and troposphere; sources, sinks, and lifetimes of trace atmospheric species; stratospheric ozone chemistry; oxidation mechanisms in the troposphere. Instructors: Seinfeld, Wennberg.
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Ch 171 - Atmospheric Chemistry I
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Ch 172: Atmospheric Chemistry II
3.00 Credits
California Institute of Technology
A lecture and discussion course about active research in atmospheric chemistry. Potential topics include halogen chemistry of the stratosphere and troposphere; aerosol formation in remote environments; coupling of dynamics and photochemistry; development and use of modern remote-sensing and in situ instrumentation. Graded pass/fail. Not offered 2012–13.
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Ch 172 - Atmospheric Chemistry II
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Ch 175: Environmental Organic Chemistry
9.00 Credits
California Institute of Technology
A detailed analysis of the important chemical reactions and physicochemical processes governing the behavior and fate of organic compounds in the surface and subsurface aquatic environments. The course is focused on physical organic chemistry relevant to natural waters. Fundamental aspects of thermodynamics, kinetics, mechanisms, and transport are stressed. Instructor: Hoffmann.
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Ch 175 - Environmental Organic Chemistry
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Ch 178: Enzyme Kinetics and Mechanisms
9.00 Credits
California Institute of Technology
Discussion of the energetic principles and molecular mechanisms that underlie enzymes’ enormous catalytic proficiency and exquisite specificity. Practical kinetics sections discuss how to infer molecular mechanisms from rate/equilibrium measurements and their application to more complex biological systems, and include steady-state and pre-steady-state kinetics, and kinetics at the single molecule level. Instructor: Shan.
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Ch 178 - Enzyme Kinetics and Mechanisms
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Ch 180: Chemical Research
1.00 - 9.00 Credits
California Institute of Technology
Graded pass/fail.
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Ch 180 - Chemical Research
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Ch 182: Senior Thesis Research
9.00 Credits
California Institute of Technology
Three terms of Ch 82/182 are to be completed during the junior and/or senior year of study. Ch 182 is taken only by students pursuing a joint B.S./M.S. degree in Chemistry. At the end of the third term, students enrolled in Ch 82 will present a thesis of approximately 20 pages (excluding figures and references) to the mentor and the Chemistry Curriculum and Undergraduate Studies Committee. The thesis must be approved by both the research mentor and the CUSC. Students enrolled in Ch 182 will present a Masters Thesis, as described in requirements for the Masters degree. An oral thesis defense will be arranged by the CUSC in the third term for all enrollees. The first two terms of Ch 82/182 will be taken on a pass/fail basis, and the third term will carry a letter grade. Instructor: Rees.
Prerequisite:
Instructor’s permission.
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Ch 182 - Senior Thesis Research
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