activity
20242026
most citedSensing with discrete time crystals

5 citations · 5 across the 2 of their papers we have counts for

collaborators

6 papers

quant-ph2026

(Non-)Traversable Quantum Phase Transitions

Federico Balducci, Paul M. Schindler, Andrea Solfanelli +1

Quantum phase transitions manifest as an abrupt change in the ground state of a many-body system; yet it is an open question whether this sudden change necessarily precludes a cont…

quant-ph20265 cited

Sensing with discrete time crystals

Leo Joon Il Moon, Paul M. Schindler, Ryan J. Smith +4

Prethermal discrete time crystals (PDTCs) are a nonequilibrium state of matter characterized by long-range spatiotemporal order, and exhibiting a subharmonic response stabilized by…

quant-ph2026

Fast thermal state preparation beyond native interactions

Alexander van Lomwel, Paul M. Schindler, Modesto Orozco-Ruiz +3

While questions on quantum simulation of ground state physics are mostly focussed on the realization of effective interactions, most work on quantum simulation of thermal physics e…

quant-ph2025

Geometric Floquet theory

Paul M. Schindler, Marin Bukov

We derive Floquet theory from quantum geometry. We identify quasienergy folding as a consequence of a broken gauge group of the adiabatic gauge potential .…

quant-ph2025

Nanoscale engineering and dynamical stabilization of mesoscopic spin textures

Kieren Harkins, Christoph Fleckenstein, Noella D'Souza +16

Thermalization phenomena, while ubiquitous in quantum systems, have traditionally been viewed as obstacles to be mitigated. In this study, we demonstrate the ability, instead, to h…

quant-ph2024

Counterdiabatic Driving for Periodically Driven Systems

Paul Manuel Schindler, Marin Bukov

Periodically driven systems have emerged as a useful technique to engineer the properties of quantum systems, and are in the process of being developed into a standard toolbox for…