activity
20242026
most citedPhase space fractons

1 citations · 1 across the 3 of their papers we have counts for

collaborators

8 papers

cond-mat.stat-mech2026

Classical fractons with cosmological fixed points

Akash Singh, Dileep P. Jatkar, S. L. Sondhi +1

Classical fractons are Hamiltonian systems that can develop attractors after projection onto configuration or shape variables, although the full phase space admits none. We study a…

cond-mat.str-el2026

Continuum Fractons: Quantization and the Few Body Problem

Ylias Sadki, Abhishodh Prakash, S. L. Sondhi

We formulate a continuum quantum mechanics for non-relativistic, dipole-conserving fractons. Imposing symmetries and locality results in novel phenomena absent in ordinary quantum…

cond-mat.stat-mech20261 cited

Phase space fractons

Ylias Sadki, Abhishodh Prakash, S. L. Sondhi +1

Perhaps the simplest approach to constructing models with sub-dimensional particles or fractons is to require the conservation of dipole or higher multipole moments. We generalize…

cond-mat.stat-mech2025

Classical Fractons: Local chaos, global broken ergodicity and an arrow of time

Aryaman Babbar, Ylias Sadki, Abhishodh Prakash +1

We report new results on classical nonrelativistic dipole conserving particles - fractons. These have been previously shown to exhibit "Machian" dynamics where the motion of one pa…

quant-ph2025

Running Quantum Computers in Discovery Mode

Benedikt Placke, Aydin Deger, G. J. Sreejith +2

Using a 36-qubit quantum processor, we demonstrate that, by operating in conjunction with a classical machine learning agent, quantum computers can discover instances of interestin…

quant-ph2024

Utility of virtual qubits in trapped-ion quantum computers

Saumya Shivam, Fabian Pokorny, Andres Vazquez-Brennan +5

We propose encoding multiple qubits inside ions in existing trapped-ion quantum computers to access more qubits and to simplify circuits implementing standard algorithms. By using…