Stanford Root

Schedule

Stanford Root

Schedule

PHYSICS 106

Experimental Methods in Quantum Physics

UNITS:4
GRADING:Letter or Credit/No Credit
LEVEL:Undergrad
GER:WAY-AQR

Experimental physics lab course aimed at providing an understanding of and appreciation for experimental methods in physics, including the capabilities and limitations, both fundamental and technical. Students perform experiments that use optics, lasers, and electronics to measure fundamental constants of nature, perform measurements at the atomic level, and analyze results. Goals include developing an understanding of measurement precision and accuracy through concepts of spectral-analysis of coherent signals combined with noise. We explore the fundamental limits to measurement set by thermal noise at finite temperature, as well as optical shot-noise in photo-detection that sets the standard quantum limit in detecting light. Spectroscopy of light emitted from atoms reveals the quantum nature of atomic energy levels, and when combined with theoretical models provides information on atomic structure and fundamental constants of nature (e.g. the fine structure constant that characterizes the strength of all electro-magnetic interactions, and the ratio of the electron mass to the proton mass, me/mp. Experiments may include laser spectroscopy to determine the interatomic potential, effective spring constant, and binding energy of a diatomic molecule, or measure the speed of light. This course will provide hands-on experience with semiconductor diode lasers, basic optics, propagation and detection of optical beams, and related electronics and laboratory instrumentation. For lab notebooks the class uses an integrated online environment for data analysis, curve fitting, (system is based on Jupyter notebooks, Python, and document preparation). Electronics at the level of PHYSICS PHYSICS 104 or ENGR 40M is useful but not required. Very basic programming in Python is needed, but background with Matlab, Origin, or similar software should be sufficient to come up to speed for the data analysis.

Syllabus for selected term:
View Winter 2027 Syllabus

Sections

1 Term
Laboratory 1Open
ID: 7597
0 / 18 enrolled
DAYS:Friday
TIME:12:30 PM – 1:20 PM
LOCATION:TBD
INSTRUCTOR:
Hollberg, Leo
4units
Lab Section 1Open
ID: 7611
0 / 6 enrolled
DAYS:Tuesday, Thursday
TIME:10:30 AM – 1:20 PM
LOCATION:TBD
INSTRUCTOR:
Hollberg, Leo
4units
Lab Section 2Open
ID: 7612
0 / 6 enrolled
DAYS:Tuesday, Thursday
TIME:4:30 PM – 7:20 PM
LOCATION:TBD
INSTRUCTOR:
Hollberg, Leo
4units
Lab Section 3Open
ID: 12953
0 / 6 enrolled
DAYS:Monday, Wednesday
TIME:4:30 PM – 7:20 PM
LOCATION:TBD
4units

PHYSICS 106: Experimental Methods in Quantum Physics

4 units · Letter or Credit/No Credit · GER: WAY-AQR

Experimental physics lab course aimed at providing an understanding of and appreciation for experimental methods in physics, including the capabilities and limitations, both fundamental and technical. Students perform experiments that use optics, lasers, and electronics to measure fundamental constants of nature, perform measurements at the atomic level, and analyze results. Goals include developing an understanding of measurement precision and accuracy through concepts of spectral-analysis of coherent signals combined with noise. We explore the fundamental limits to measurement set by thermal noise at finite temperature, as well as optical shot-noise in photo-detection that sets the standard quantum limit in detecting light. Spectroscopy of light emitted from atoms reveals the quantum nature of atomic energy levels, and when combined with theoretical models provides information on atomic structure and fundamental constants of nature (e.g. the fine structure constant that characterizes the strength of all electro-magnetic interactions, and the ratio of the electron mass to the proton mass, me/mp. Experiments may include laser spectroscopy to determine the interatomic potential, effective spring constant, and binding energy of a diatomic molecule, or measure the speed of light. This course will provide hands-on experience with semiconductor diode lasers, basic optics, propagation and detection of optical beams, and related electronics and laboratory instrumentation. For lab notebooks the class uses an integrated online environment for data analysis, curve fitting, (system is based on Jupyter notebooks, Python, and document preparation). Electronics at the level of PHYSICS 104 or ENGR 40M is useful but not required. Very basic programming in Python is needed, but background with Matlab, Origin, or similar software should be sufficient to come up to speed for the data analysis.

Offered in Winter 2027 at Stanford University.

Winter 2027 sections

  • Lab Section — Monday Wednesday 4:30 PM – 7:20 PM (Undergrad)
  • Lab Section — Tuesday Thursday 4:30 PM – 7:20 PM — Hollberg, Leo (Undergrad)
  • Lab Section — Tuesday Thursday 10:30 AM – 1:20 PM — Hollberg, Leo (Undergrad)
  • Laboratory — Friday 12:30 PM – 1:20 PM — Hollberg, Leo (Undergrad)

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