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Geometric quantum thermodynamics: A fibre bundle approach

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abstract

Classical thermodynamics is a theory based on coarse-graining, meaning that the thermodynamic variables arise from discarding information related to the microscopic features of the system at hand. In quantum mechanics, however, where one has a high degree of control over microscopic systems, information theory plays an important role in describing the thermal properties of quantum systems. Recently, a new approach has been proposed in the form of a quantum thermodynamic gauge theory, where the notion of redundant information arises from a group of physically motivated gauge transformations called the thermodynamic group. In this work, we explore the geometrical structure of quantum thermodynamics. Particularly, we do so by explicitly constructing the relevant principal fibre bundle. We then show that there are two distinct (albeit related) geometric structures associated with the gauge theory of quantum thermodynamics. In this way, we express thermodynamics in the same mathematical (geometric) language as the fundamental theories of physics. Finally, we discuss how the geometric and topological properties of these structures may help explain fundamental properties of thermodynamics.

fields

quant-ph 1

years

2026 1

verdicts

UNVERDICTED 1

representative citing papers

Geometry of restricted information: the case of quantum thermodynamics

quant-ph · 2026-02-06 · unverdicted · novelty 7.0

A gauge-invariant formulation of quantum thermodynamics is constructed from restricted information, yielding a stochastic invariant entropy that obeys detailed fluctuation theorems and unifies the first and second laws via invariant work and coherent heat.

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Showing 1 of 1 citing paper.

  • Geometry of restricted information: the case of quantum thermodynamics quant-ph · 2026-02-06 · unverdicted · none · ref 15 · internal anchor

    A gauge-invariant formulation of quantum thermodynamics is constructed from restricted information, yielding a stochastic invariant entropy that obeys detailed fluctuation theorems and unifies the first and second laws via invariant work and coherent heat.