Prado Jose I, Lugo Luis
Departamento de Física Aplicada, Facultade de Ciencias, Universidade de Vigo, Campus Lagoas-Marcosende, Vigo E-36310, Spain.
ACS Appl Mater Interfaces. 2020 Sep 2;12(35):39108-39117. doi: 10.1021/acsami.0c09643. Epub 2020 Aug 20.
The effectiveness of dispersed nanomaterials to improve the thermal performance of phase change materials (PCMs) is well-proven in the literature. The proposal of new engineered nanoenhanced phase change materials (NePCMs) with customized characteristics may lead to more efficient thermal energy storage (TES) systems. This work is focused on the development of new NePCMs based on the dispersions of graphene nanoplatelets (GnPs) or MgO nanoparticles in a stearate PCM. The new proposed materials were synthesized using a two-step method, and acetic acid was selected as a surfactant to improve the stability of the dispersions. An extensive characterization of the constitutive materials and the developed dispersions using different spectroscopy techniques is reported. Also, the GnP nanopowder was explored by using the XPS technique with the aim to characterize the used carbon nanomaterial. The obtained spectra were investigated in terms of the chemical bonds related to the observed peaks. The thermophysical profile (density, thermal conductivity, isobaric heat capacity, and thermal diffusivity) was experimentally determined once the main components of the NePCMs were characterized and dispersions were designed and developed. This discussion focuses on the differentiated and distinguished effects of the dispersed GnPs and MgO on the properties of the NePCMs. A comprehensive analysis of the measurements to elucidate the mechanism that promoted higher improvements using GnPs instead of MgO was performed.
分散纳米材料提高相变材料(PCM)热性能的有效性在文献中已得到充分证明。提出具有定制特性的新型工程纳米增强相变材料(NePCM)可能会带来更高效的热能存储(TES)系统。这项工作专注于基于石墨烯纳米片(GnP)或氧化镁纳米颗粒在硬脂酸PCM中的分散体开发新型NePCM。新提出的材料采用两步法合成,并选择乙酸作为表面活性剂来提高分散体的稳定性。报告了使用不同光谱技术对组成材料和所开发分散体进行的广泛表征。此外,使用XPS技术对GnP纳米粉末进行了探索,旨在表征所使用的碳纳米材料。根据与观察到的峰相关的化学键对获得的光谱进行了研究。一旦对NePCM的主要成分进行了表征,并设计和开发了分散体,就通过实验确定了热物理特性(密度、热导率、等压热容和热扩散率)。本讨论聚焦于分散的GnP和氧化镁对NePCM性能的不同和显著影响。对测量结果进行了全面分析,以阐明使用GnP而非氧化镁促进更高改进的机制。