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晶面工程提升无机-聚合物复合材料的界面相容性。

Facet Engineering Boosts Interfacial Compatibility of Inorganic-Polymer Composites.

作者信息

Yu Kun, Ye Guangli, Zhang Jun, Fu Liangjie, Dong Xiongbo, Yang Huaming

机构信息

Engineering Research Center of Nano-Geomaterials of Ministry of Education China University of Geosciences, Wuhan, 430074, China.

Faculty of Materials Science and Chemistry, China University of Geosciences, Wuhan, 430074, China.

出版信息

Adv Sci (Weinh). 2024 Nov;11(41):e2405175. doi: 10.1002/advs.202405175. Epub 2024 Sep 4.

Abstract

The interfacial compatibility between inorganic particles and polymer is crucial for ensuring high performance of composites. Current efforts to improve interfacial compatibility preferentially rely on organic modification of inorganic particles, leading to their complex process, high costs, and short lifespans due to aging and decomposition of organic modifiers. However, the fabrication of inorganic particles free from organic modification that is highly compatible in polymer still remains a great challenge. Herein, a novel facet-engineered inorganic particle that exhibit high compatibility with widely used polymer interface without organic modification is reported. Theoretical calculations and experimental results show that (020) and (102) facets of inorganic particles modulate local coordination environment of Ca atoms, which in turn regulate d-orbital electron density of Ca atoms and electron transfer paths at interfaces between polymer and inorganic particles. This difference alters the molecular diffusion, orientation of molecular chains on surface of inorganic particles, further modulating interfacial compatibility of composites. Surprisingly, the facet-engineered inorganic particles show exceptional mechanical properties, especially for tensile strain at break, which increases by 395%, far superior to state-of-the-art composites counterparts. Thus, the method can offer a more benign approach to the general production of high-performance and low-cost polymer-inorganic composites for diverse potential applications.

摘要

无机粒子与聚合物之间的界面相容性对于确保复合材料的高性能至关重要。目前改善界面相容性的努力主要依赖于对无机粒子进行有机改性,这导致其工艺复杂、成本高昂,并且由于有机改性剂的老化和分解而使用寿命较短。然而,制备在聚合物中具有高度相容性且无有机改性的无机粒子仍然是一个巨大的挑战。在此,报道了一种新型的晶面工程化无机粒子,其在无有机改性的情况下与广泛使用的聚合物界面具有高相容性。理论计算和实验结果表明,无机粒子的(020)和(102)晶面调节了Ca原子的局部配位环境,进而调节了Ca原子的d轨道电子密度以及聚合物与无机粒子之间界面处的电子转移路径。这种差异改变了分子扩散、无机粒子表面分子链的取向,进一步调节了复合材料的界面相容性。令人惊讶的是,晶面工程化无机粒子表现出优异的力学性能,尤其是断裂拉伸应变,提高了395%,远远优于现有复合材料。因此,该方法可为广泛生产用于各种潜在应用的高性能、低成本聚合物-无机复合材料提供一种更有利的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/baa2/11538667/3970b0771395/ADVS-11-2405175-g006.jpg

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