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Unified Description of the Specific Heat of Ionic Bulk Materials Containing Nanoparticles

机译:含有纳米颗粒的离子散装材料的比热的统一描述

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The specific heat behavior in bulk nanomaterials (NMs) obtained by adding nanoparticles to pure suspending media has attracted a lot interest in recent years. Controversial results about NMs specific heat (c(p)) have been reported in the literature, where nanoparticles (NPs) of different sizes and materials were suspended in solid and liquid salts at different concentrations and temperatures. However, a unified picture explaining the c(p) enhancements and diminutions by adding NPs to pure salts is still missing. In this work, we present a general theoretical thermostatic model aimed at describing the c(p) behavior in two-component ionic bulk nanomaterials containing NPs. The model, designed to work in the dilute regime, divides the NM in three regions: bulk suspending medium (SM), nanoparticles, and interface regions. It includes the effects of temperature, NP size, and NP concentration (mass fraction), allowing us to calculate c(p) variations with respect to the pure SM and the ideal NM (where NP and SM are assumed to not interact). We then use the model to interpret results of our classical molecular dynamics simulations, which we perform in the solid and liquid phases of NMs representative of three different classes, defined according to the atomic interactions at the interface. The analysis reveals nontrivial and competing effects influencing c(p), such as system-dependent atomic rearrangements at the interface, vibrations of the NP as a whole and c(p) variations coming from the individual NP and SM specific heats. Our study contributes to the interpretation of past controversial results and helps in designing NMs with improved thermal properties, which is highly relevant for industrial applications in thermal energy storage and renewable energy production.
机译:近年来,通过在纯悬浮介质中添加纳米颗粒获得的块体纳米材料的比热行为引起了人们的广泛关注。文献中报道了关于NMs比热(c(p))的有争议的结果,其中不同尺寸和材料的纳米颗粒(NPs)悬浮在不同浓度和温度的固体和液体盐中。然而,通过向纯盐中添加NPs来解释c(p)增强和减弱的统一图景仍然缺失。在这项工作中,我们提出了一个通用的理论恒温模型,旨在描述含有纳米颗粒的双组分离子块体纳米材料中的c(p)行为。该模型设计用于稀释状态,将纳米颗粒分为三个区域:大块悬浮介质(SM)、纳米颗粒和界面区域。它包括温度、NP大小和NP浓度(质量分数)的影响,使我们能够计算纯SM和理想NM(假设NP和SM不相互作用)的c(p)变化。然后,我们使用该模型来解释经典分子动力学模拟的结果,我们在代表三个不同类别的NMs的固相和液相中进行模拟,根据界面上的原子相互作用定义。分析揭示了影响c(p)的非平凡和竞争效应,例如界面处依赖系统的原子重排、NP作为一个整体的振动以及来自单个NP和SM比热的c(p)变化。我们的研究有助于解释过去有争议的结果,并有助于设计热性能更好的NMs,这与热能储存和可再生能源生产的工业应用高度相关。

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