activity
20242026
collaborators

6 papers

cond-mat.soft2026

Propelling catalytic structures using active phase separation

Benjamin Sorkin, Ned S. Wingreen

Living systems routinely consume energy to achieve motility, often using intricate biomolecular machinery. In this work, we show that active droplets can sustain indefinite self-pr…

cond-mat.soft2026

Polymer-Residue Accessibility Shapes Sequence Dependence of Critical Temperatures for Phase Separation

J. Pedro de Souza, Benjamin Sorkin, Amala Akkiraju +2

Biological polymers, such as intrinsically disordered proteins, play a central role in cellular biology, including mediating phase separation and controlling activity of biological…

cond-mat.stat-mech2026

Effective synchronization amid noise-induced chaos

Benjamin Sorkin, Thomas A. Witten

Two remote agents with synchronized clocks may use them to act in concert and communicate. This necessitates some means of creating and maintaining synchrony. One method, not requi…

cond-mat.stat-mech2026

Consistent thermodynamics reconstructed from transitions between nonequilibrium steady-states

Rémi Goerlich, Benjamin Sorkin, Dima Boriskovsky +4

Constructing a thermodynamic framework for nonequilibrium systems remains a major challenge, as quantities such as temperature and free energy often become ambiguous when inferred…

physics.bio-ph2025

Accelerated Ostwald ripening by chemical activity

Benjamin Sorkin, Ned S. Wingreen

Phase separation of biomolecular condensates promotes membrane-free compartmentalization in cells. The dynamics of these biocondensates is routinely regulated by energy-consuming p…

cond-mat.stat-mech2024

Second Law of Thermodynamics without Einstein Relation

Benjamin Sorkin, Haim Diamant, Gil Ariel +1

Materials that are constantly driven out of thermodynamic equilibrium, such as active and living systems, typically violate the Einstein relation. This may arise from active contri…