Thompson Group Theses

2025

D.. Young, Exploring Out-of-Equilibrium Quantum Simulation in a Many-Atom Strontium Cavity QED Platform, University of Colorado, ¶¶Òõ´«Ã½ÔÚÏß, 2025.

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2024

C.. Luo, Twisting, Binding, and Probing Matter Waves in a Rubidium Cavity QED System, ¶¶Òõ´«Ã½ÔÚÏß, 2024.

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2021

J.R.K. Cline, Continuous Collective Strong Coupling Between Atoms and a High Finesse Cavity on a Forbidden Optical Transition, ¶¶Òõ´«Ã½ÔÚÏß, 2021.
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G.P. Greve, Entanglement-Enhanced Matter-Wave Interferometry, ¶¶Òõ´«Ã½ÔÚÏß, 2021.
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B.. Wu, Homogeneous Atom-Cavity Coupling for Quantum Metrology, ¶¶Òõ´«Ã½ÔÚÏß, 2021.

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2017

M.. Norcia, New Tools for Precision Measurement and Quantum Science With Narrow Linewidth Optical Transitions, ¶¶Òõ´«Ã½ÔÚÏß, 2017.

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2016

K.C. Cox, Quantum-Enhanced Measurements With Atoms in Cavities: Superradiance and Spin Squeezing, ¶¶Òõ´«Ã½ÔÚÏß, 2016.

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2015

J.M. Weiner, Synchronization and Sensing With Steady State Superradiance and Spin Squeezing, ¶¶Òõ´«Ã½ÔÚÏß, 2015.

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2014

J.G. Bohnet, A Superradiant Laser and Spin Squeezed States: Collective Phenomena in a Rubidium Cavity QED System for Enhancing Precision Measurements, ¶¶Òõ´«Ã½ÔÚÏß, 2014.

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2013

Z.. Chen, Breaking Quantum Limits With Collective Cavity-QED: Generation of Spin Squeezed States via Quantum Non-Demolition Measurements, ¶¶Òõ´«Ã½ÔÚÏß, 2013.
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