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纳米材料的粒径对表面/界面张力及托尔曼长度的影响:一种结合理论的简单实验方法

Particle size effect on surface/interfacial tension and Tolman length of nanomaterials: A simple experimental method combining with theoretical.

作者信息

Zhang Shengjiang, Xin Yujia, Sun Yanan, Xi Ziheng, Wei Gan, Han Meng, Liang Bing, Ou Panpan, Xu Kangzhen, Qiu Jiangyuan, Huang Zaiyin

机构信息

School of Chemical Engineering, Xi'an Key Laboratory of Special Energy Materials, Northwest University, Xi'an 710069, People's Republic of China.

Department of Chemistry and Chemical Engineering, Guangxi Minzu University, Key Laboratory of Chemistry and Engineering of Forest Products, State Ethnic Affairs Commission, Guangxi Key Laboratory of Chemistry and Engineering of Forest Products, Guangxi Collaborative Innovation Center for Chemistry and Engineering of Forest Products, Key Laboratory of Guangxi Colleges and Universities for Food Safety and Pharmaceutical Analytical Chemistry, Nanning 530006, People's Republic of China.

出版信息

J Chem Phys. 2024 May 21;160(19). doi: 10.1063/5.0204848.

Abstract

Surface tension and interfacial tension are crucial to the study of nanomaterials. Herein, we report a solubility method using magnesium oxide nanoparticles of different radii (1.8-105.0 nm, MgO NPs) dissolved in pure water as a targeted model; the surface tension and interfacial tension (and their temperature coefficients) were determined by measuring electrical conductivity and combined with the principle of the electrochemical equilibrium method, and the problem of particle size dependence is discussed. Encouragingly, this method can also be used to determine the ionic (atomic or molecular) radius and Tolman length of nanomaterials. This research results disclose that surface/interfacial tension and their temperature coefficients have a significant relationship with particle size. Surface/interfacial tension decreases rapidly with a radius <10 nm (while the temperature coefficients are opposite), while for a radius >10 nm, the effect is minimal. Especially, it is proven that the value of Tolman length is positive, the effect of particle size on Tolman length is consistent with the surface/interfacial tension, and the Tolman length of the bulk does not change much in the temperature range. This work initiates a new era for reliable determination of surface/interfacial tension, their temperature coefficients, ionic radius, and Tolman length of nanomaterials and provides an important theoretical basis for the development and application of various nanomaterials.

摘要

表面张力和界面张力对于纳米材料的研究至关重要。在此,我们报告一种溶解度方法,该方法使用溶解在纯水中的不同半径(1.8 - 105.0 nm,MgO NPs)的氧化镁纳米颗粒作为目标模型;通过测量电导率并结合电化学平衡法原理来确定表面张力和界面张力(及其温度系数),并讨论粒径依赖性问题。令人鼓舞的是,该方法还可用于确定纳米材料的离子(原子或分子)半径和托尔曼长度。本研究结果表明,表面/界面张力及其温度系数与粒径有显著关系。当半径<10 nm时,表面/界面张力迅速下降(而温度系数则相反),而对于半径>10 nm时,影响最小。特别是,已证明托尔曼长度的值为正,粒径对托尔曼长度的影响与表面/界面张力一致,并且在该温度范围内本体的托尔曼长度变化不大。这项工作开启了可靠测定纳米材料表面/界面张力、其温度系数、离子半径和托尔曼长度的新纪元,并为各种纳米材料的开发和应用提供了重要的理论基础。

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