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Thermodynamics of Hamiltonian anyons with applications to quantum heat engines

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abstract

The behavior of a collection of identical particles is intimately linked to the symmetries of their wavefunction under particle exchange. Topological anyons, arising as quasiparticles in low-dimensional systems, interpolate between bosons and fermions, picking up a complex phase when exchanged. Recent research has demonstrated that similar statistical behavior can arise with mixtures of bosonic and fermionic pairs, offering theoretical and experimental simplicity. We introduce an alternative implementation of such \emph{statistical anyons}, based on promoting or suppressing the population of symmetric states via a symmetry generating Hamiltonian. The scheme has numerous advantages: anyonic statistics emerge in a single particle pair, extending straightforwardly to larger systems; the statistical properties can be dynamically adjusted; and the setup can be simulated efficiently. We show how exchange symmetry can be exploited to improve the performance of heat engines, and demonstrate a reversible work extraction cycle in which bosonization and fermionization replace compression and expansion strokes. Additionally, we investigate emergent thermal properties, including critical phenomena, in large statistical anyon systems.

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representative citing papers

A Hybrid Anyon-Otto thermal machine

cond-mat.str-el · 2025-08-29 · conditional · novelty 6.0

A four-stroke anyon-Otto cycle converts anyon exclusion energy into work, and weakly interacting anyons maximize low-temperature work at intermediate statistical angles.

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  • A Hybrid Anyon-Otto thermal machine cond-mat.str-el · 2025-08-29 · conditional · none · ref 50 · internal anchor

    A four-stroke anyon-Otto cycle converts anyon exclusion energy into work, and weakly interacting anyons maximize low-temperature work at intermediate statistical angles.