论文标题
平衡和瞬态热力学:统一的耗散空间方法
Equilibrium and transient thermodynamics: A unified dissipaton-space approach
论文作者
论文摘要
这项工作提出了统一的消化量 - 运动理论(DEOM)理论及其对Helmholtz自由能量变化的评估,这是由于两个孤立子系统的等温混合而导致的。一种是当地的杂质,另一个是非局部高斯浴室。 DEOM构成了这种开放量子混合物的基本理论。为了完成该理论,我们还通过分析延续dissipaton代数构建了假想时间的deom形式主义,这将限于平衡热力学。另一方面,实时DEOM处理平衡结构和非平衡动态特性。它与热力学整体形式主义的结合将是平衡和瞬态热力学的一种可行而准确的手段。作为插图,我们报告了旋转 - 玻璃系统的数值结果,并在基础的非谐式特征,热力学熵与von Neumann熵上进行了详细说明,并表明“溶剂盘”地层的指示。除了所需的渐近平衡特性外,提出的瞬态热力学还支持基本的自发标准。
This work presents a unified dissipaton-equation-of-motion (DEOM) theory and its evaluations on the Helmholtz free energy change due to the isotherm mixing of two isolated subsystems. One is a local impurity and another is a nonlocal Gaussian bath. DEOM constitutes a fundamental theory for such open quantum mixtures. To complete the theory, we construct also the imaginary-time DEOM formalism via an analytical continuation of dissipaton algebra, which would be limited to equilibrium thermodynamics. On the other hand, the real-time DEOM deals with both equilibrium structural and nonequilibrium dynamic properties. Its combination with the thermodynamic integral formalism would be a viable and accurate means to both equilibrium and transient thermodynamics. As illustrations, we report the numerical results on a spin--boson system, with elaborations on the underlying anharmonic features, the thermodynamic entropy versus the von Neumann entropy, and an indication of "solvent-cage" formation. Beside the required asymptotic equilibrium properties, the proposed transient thermodynamics also supports the basic spontaneity criterion.