Quick Navigation

Topics

Trapped Ion Quantum Computing Quantum Thermodynamics Quantum Chemistry

Thermodynamic Networks: Harnessing Non-Equilibrium Steady States for Computation

arXiv
Authors: Patryk Lipka-Bartosik, Gianmichele Blasi, Javier Lalueza Puértolas, Géraldine Haack, Martí Perarnau-Llobet, Nicolas Brunner

Year

2026

Paper ID

63911

Status

Preprint

Abstract Read

~2 min

Abstract Words

161

Citations

0

Abstract

We introduce thermodynamic networks, a general framework for autonomous, physics-based computation using non-equilibrium steady states. These networks are modeled as a collection of finite-size reservoirs that exchange conserved quantities--such as electric charge or molecular number--while relaxing to a non-equilibrium steady state, which encodes the solution of a computational problem. We identify Negative Differential Conductance (NDC) as the critical physical property governing the computational expressivity of the thermodynamic network. While networks lacking NDC are restricted to computing monotonic functions, the presence of NDC enables universal function approximation. For the training of the network, we use protocols that take advantage of the natural tendency of the system to equilibrate. We illustrate the versatility of our approach via two different platforms: quantum dot networks and enzymatic reaction networks. Both systems can be engineered to have NDC, enabling high performance in standard benchmarks, including sine function approximation and MNIST digit classification. Overall, our work establishes a rigorous link between non-equilibrium steady states and computational expressivity.

Why This Paper Matters

  • This paper contributes to the Quantum Thermodynamics research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • We introduce thermodynamic networks, a general framework for autonomous, physics-based computation using non-equilibrium steady states.

Paper Tools

Become a member to use research tools

Sign in to open papers, visit source links, share, cite, compare, copy DOI links, request category corrections, and build your reading list.

Show Paper arXiv Publisher Share Cite This Paper Copy URL Compare Copy DOI Add to Reading List Category Correction Request

References & Citation Signals

Local Citation Graph (Related-Paper Links)

Current Paper #63911 #68423 Selective Fermi-Level Pinning: ... #68401 Quantum Ghost Spectroscopy Reve... #68474 Concentration-Free Quantum Kern... #68470 A fluxonium qubit-based hybrid ...

External citation index: OpenAlex citation signal • updated 2026-06-13 04:14:54

Community Reactions

Quick sentiment from readers on this paper.

Score: 0
Likes: 0 Dislikes: 0

Sign in to react to this paper.

Discussion & Reviews (Moderated)

Average Rating: 0.0 / 5 (0 ratings)

No written reviews yet.