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少体费米子系统中的本征态热化与系综等价性。

Eigenstate thermalization and ensemble equivalence in few-body fermionic systems.

作者信息

Jacquod Ph

机构信息

Department of Quantum Matter Physics, University of Geneva, CH-1211 Geneva, Switzerland and School of Engineering, University of Applied Sciences of Western Switzerland HES-SO, CH-1951 Sion, Switzerland.

出版信息

Phys Rev E. 2020 Jun;101(6-1):062141. doi: 10.1103/PhysRevE.101.062141.

Abstract

We investigate eigenstate thermalization from the point of view of vanishing particle and heat currents between a few-body fermionic Hamiltonian prepared in one of its eigenstates and an external, weakly coupled Fermi-Dirac gas. The latter acts as a thermometric probe, with its temperature and chemical potential set so that there is neither particle nor heat current between the two subsystems. We argue that the probe temperature can be attributed to the few-fermion eigenstate in the sense that (i) it varies smoothly with energy from eigenstate to eigenstate, (ii) it is equal to the temperature obtained from a thermodynamic relation in a wide energy range, (iii) it is independent of details of the coupling between the two systems in a finite parameter range, (iv) it satisfies the transitivity condition underlying the zeroth law of thermodynamics, and (v) it is consistent with Carnot's theorem. For the spinless fermion model considered here, these conditions are essentially independent of the interaction strength. When the latter is weak, however, orbital occupancies in the few-fermion system differ from the Fermi-Dirac distribution so that partial currents from or to the probe will eventually change its state. We find that (vi) above a certain critical interaction strength, orbital occupancies become close to the Fermi-Dirac distribution, leading to a true equilibrium between the few-fermion system and the probe. In that case, the coupling between the Fermi-Dirac gas and few-fermion system does not modify the state of the latter, which justifies our approach a posteriori. From these results, we conjecture that for few-body systems with sufficiently strong interaction, the eigenstate thermalization hypothesis is complemented by ensemble equivalence: individual many-body eigenstates define a microcanonical ensemble that is equivalent to a canonical ensemble with grand canonical orbital occupancies.

摘要

我们从处于其本征态之一的少体费米子哈密顿量与外部弱耦合费米 - 狄拉克气体之间粒子流和热流消失的角度研究本征态热化。后者充当温度测量探针,其温度和化学势设置为使得两个子系统之间既无粒子流也无热流。我们认为,在以下意义上探针温度可归因于少费米子本征态:(i) 它在本征态之间随能量平滑变化;(ii) 在很宽的能量范围内它等于从热力学关系得到的温度;(iii) 在有限参数范围内它与两个系统之间耦合的细节无关;(iv) 它满足热力学第零定律所基于的传递性条件;(v) 它与卡诺定理一致。对于这里考虑的无自旋费米子模型,这些条件基本上与相互作用强度无关。然而,当相互作用较弱时,少费米子系统中的轨道占据情况与费米 - 狄拉克分布不同,以至于来自或流向探针的部分流最终会改变其状态。我们发现 (vi) 在某个临界相互作用强度之上,轨道占据情况变得接近费米 - 狄拉克分布,导致少费米子系统与探针之间达到真正的平衡。在那种情况下,费米 - 狄拉克气体与少费米子系统之间的耦合不会改变后者的状态,这事后证明了我们方法的合理性。从这些结果,我们推测对于具有足够强相互作用的少体系统,本征态热化假设由系综等价性补充:单个多体本征态定义一个微正则系综,它等同于具有巨正则轨道占据情况的正则系综。

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