Christopher Sutton1, Sergey V Levchenko2. 1. Department of Chemistry and Biochemistry, University of South Carolina, Columbia, SC, United States. 2. Skolkovo Innovation Center, Skolkovo Institute of Science and Technology, Moscow, Russia.
Abstract
In most applications, functional materials operate at finite temperatures and are in contact with a reservoir of atoms or molecules (gas, liquid, or solid). In order to understand the properties of materials at realistic conditions, statistical effects associated with configurational sampling and particle exchange at finite temperatures must consequently be taken into account. In this contribution, we discuss the main concepts behind equilibrium statistical mechanics. We demonstrate how these concepts can be used to predict the behavior of materials at realistic temperatures and pressures within the framework of atomistic thermodynamics. We also introduce and discuss methods for calculating phase diagrams of bulk materials and surfaces as well as point defect concentrations. In particular, we describe approaches for calculating the configurational density of states, which requires the evaluation of the energies of a large number of configurations. The cluster expansion method is therefore also discussed as a numerically efficient approach for evaluating these energies.
In most applications, functionn class="Chemical">al materials operate at finite temperatures and are in contact with a reservoir of atoms or molecules (gas, liquid, or solid). In order to understand the properties of materials at realistic conditions, statistical effects associated with configurational sampling and particle exchange at finite temperatures must consequently be taken into account. In this contribution, we discuss the main concepts behind equilibrium statisticalmechanics. We demonstrate how these concepts can be used to predict the behavior of materials at realistic temperatures and pressures within the framework of atomistic thermodynamics. We also introduce and discuss methods for calculating phase diagrams of bulk materials and surfaces as well as point defect concentrations. In particular, we describe approaches for calculating the configurational density of states, which requires the evaluation of the energies of a large number of configurations. The cluster expansion method is therefore also discussed as a numerically efficient approach for evaluating these energies.
Authors: Carlos Emiliano Buelna-García; Cesar Castillo-Quevedo; Jesus Manuel Quiroz-Castillo; Edgar Paredes-Sotelo; Manuel Cortez-Valadez; Martha Fabiola Martin-Del-Campo-Solis; Tzarara López-Luke; Marycarmen Utrilla-Vázquez; Ana Maria Mendoza-Wilson; Peter L Rodríguez-Kessler; Alejandro Vazquez-Espinal; Sudip Pan; Aned de Leon-Flores; Jhonny Robert Mis-May; Adán R Rodríguez-Domínguez; Gerardo Martínez-Guajardo; Jose Luis Cabellos Journal: Front Chem Date: 2022-03-01 Impact factor: 5.221
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