papers

Publications (19)

quant-ph2026

A 10 Megahertz Spatial Light Modulator

Xin Wei, Zeyang Li, Abhishek V. Karve +3

Rapid and programmable shaping of light fields is central to modern microscopy, display technologies, optical communications and sensing, quantum engineering, and quantum informati…

quant-ph2025

Optimal Conversion from Classical to Quantum Randomness via Quantum Chaos

Wai-Keong Mok, Tobias Haug, Adam L. Shaw +2

Quantum many-body systems provide a unique platform for exploring the rich interplay between chaos, randomness, and complexity. In a recently proposed paradigm known as deep therma…

quant-ph2025

Erasure-cooling, control, and hyper-entanglement of motion in optical tweezers

Adam L. Shaw, Pascal Scholl, Ran Finkelstein +3

Coherently controlling the motion of single atoms in optical tweezers would enable new applications in quantum information science. To demonstrate this, we first prepare atoms in t…

physics.atom-ph2023

Dark-state enhanced loading of an optical tweezer array

Adam L. Shaw, Pascal Scholl, Ran Finklestein +3

Neutral atoms and molecules trapped in optical tweezers have become a prevalent resource for quantum simulation, computation, and metrology. However, the maximum achievable system…

quant-ph2025

Experimental signatures of Hilbert-space ergodicity: Universal bitstring distributions and applications in noise learning

Adam L. Shaw, Daniel K. Mark, Joonhee Choi +4

Systems reaching thermal equilibrium are ubiquitous. For classical systems, this phenomenon is typically understood statistically through ergodicity in phase space, but translating…

quant-ph2024

A Maximum Entropy Principle in Deep Thermalization and in Hilbert-Space Ergodicity

Daniel K. Mark, Federica Surace, Andreas Elben +5

We report universal statistical properties displayed by ensembles of pure states that naturally emerge in quantum many-body systems. Specifically, two classes of state ensembles ar…