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限制在纳米结构硅基材料中的液体的低温行为特性

Peculiarities of Low-Temperature Behavior of Liquids Confined in Nanostructured Silicon-Based Material.

作者信息

Bardushkin Vladimir, Kochetygov Andrey, Shilyaeva Yulia, Volovlikova Olga, Dronov Alexey, Gavrilov Sergey

机构信息

National Research University of Electronic Technology, Bld. 1, Shokin Square, Zelenograd, 124498 Moscow, Russia.

出版信息

Nanomaterials (Basel). 2020 Oct 28;10(11):2151. doi: 10.3390/nano10112151.

Abstract

This study is devoted to the confinement effects on freezing and melting in electrochemical systems containing nanomaterial electrodes and liquid electrolytes. The melting of nanoparticles formed upon freezing of liquids confined in pores of disordered nanostructured -type silicon has been studied by low-temperature differential scanning calorimetry. Experimental results obtained for deionized water, an aqueous solution of potassium sulfate, and -decane are presented. A model is proposed for predicting the melting point of nanoparticles formed during freezing of liquids inside the pores of a disordered nanostructured material. The model is based on the classical thermodynamic concept of the phase transition temperature dependence on the particle size. It takes into account the issues arising when a liquid is dispersed in a matrix of another material: the effect of mechanical stress resulted from the difference in the thermal linear expansion coefficients at a temperature gradient, the effect of the volumetric liquid content in the matrix, the presence of a nonfreezing liquid layer inside the pores, and the effect of wettability of the matrix with the liquid. Model calculations for water and -decane confined in nanostructured silicon matrix have been carried out considering the volumetric liquid content. The results obtained have been compared with the differential scanning calorimetry data.

摘要

本研究致力于探讨纳米材料电极和液体电解质的电化学系统中,限域效应对于冻结和融化过程的影响。通过低温差示扫描量热法,研究了在无序纳米结构型硅孔隙中受限液体冻结时形成的纳米颗粒的融化情况。给出了去离子水、硫酸钾水溶液和正癸烷的实验结果。提出了一个模型,用于预测在无序纳米结构材料孔隙内液体冻结过程中形成的纳米颗粒的熔点。该模型基于相变温度对颗粒尺寸依赖性的经典热力学概念。它考虑了液体分散在另一种材料基质中时出现的问题:温度梯度下热线性膨胀系数差异导致的机械应力效应、基质中液体体积含量的影响、孔隙内非冻结液体层的存在以及基质与液体的润湿性影响。考虑液体体积含量,对受限在纳米结构硅基质中的水和正癸烷进行了模型计算。将所得结果与差示扫描量热法数据进行了比较。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/80ff/7692464/37807ec60e3e/nanomaterials-10-02151-g001.jpg

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