Quantum phase transitions without thermodynamic limits

Author:

Brody Dorje C1,Hook Daniel W2,Hughston Lane P3

Affiliation:

1. Department of Mathematics, Imperial College LondonLondon SW7 2BZ, UK

2. Blackett Laboratory, Imperial College LondonLondon SW7 2BZ, UK

3. Department of Mathematics, King's College LondonLondon WC2R 2LS, UK

Abstract

A new microcanonical equilibrium state is introduced for quantum systems with finite-dimensional state spaces. Equilibrium is characterized by a uniform distribution on a level surface of the expectation value of the Hamiltonian. The distinguishing feature of the proposed equilibrium state is that the corresponding density of states is a continuous function of the energy, and hence thermodynamic functions are well defined for finite quantum systems. The density of states, however, is not in general an analytic function. It is demonstrated that generic quantum systems therefore exhibit second-order phase transitions at finite temperatures.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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1. Geometric quantum thermodynamics;Physical Review E;2022-11-01

2. Topological theory of phase transitions;Journal of Physics A: Mathematical and Theoretical;2022-08-17

3. Excited-state quantum phase transitions;Journal of Physics A: Mathematical and Theoretical;2021-03-16

4. Geometrical Aspects in the Analysis of Microcanonical Phase-Transitions;Entropy;2020-03-26

5. Topological origin of phase transitions in the absence of critical points of the energy landscape;Journal of Statistical Mechanics: Theory and Experiment;2018-09-05

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