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金属盐对多孔碳孔结构的调控及其在碳化硅陶瓷连接中的应用

The Modulation of the Pore Structure in Porous Carbon by Metal Salts and Its Application for Joining Silicon Carbide Ceramics.

作者信息

Wu Xishi, Liu Zehua, Pei Bingbing, Wu Haibo, Huang Zhengren

机构信息

State Key Laboratory of Advanced Marine Materials, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.

Qianwan Institute of CNITECH, Qianwan New Area, Ningbo 315336, China.

出版信息

Materials (Basel). 2025 May 17;18(10):2336. doi: 10.3390/ma18102336.

Abstract

In this work, the metal salts were introduced into the resin-solvent gel system to leverage their ortho-substitution effect, thereby accelerating the polymerization-induced phase separation process. Subsequent in-situ carbonization resulted in the preparation of porous carbon materials with three-dimensional interconnected pores. By precisely tuning the parameters of the resin-solvent-metal ion system, control over the pore structure of the porous carbon was achieved, with a porosity range of 16.5% to 66.5% and a pore diameter range of 8 to 248 nm. The addition of metallic salts can simply and effectively increase the pore structure after carbonization, making the infiltration of molten silicon easier. This is beneficial to the joining process of silicon carbide ceramics. Based on these findings, a high-reliability joining technique for large-sized (135 mm × 205 mm) silicon carbide ceramics was developed. The resulting interlayer was dense and defect-free, exhibiting a joining strength of 309 ± 33 MPa and a Weibull modulus of 10.67. These results highlight the critical role of structured porous media in advancing the field of large-sized ceramic joining.

摘要

在这项工作中,将金属盐引入树脂 - 溶剂凝胶体系以利用其邻位取代效应,从而加速聚合诱导相分离过程。随后的原位碳化制备出具有三维互连孔隙的多孔碳材料。通过精确调整树脂 - 溶剂 - 金属离子体系的参数,实现了对多孔碳孔结构的控制,孔隙率范围为16.5%至66.5%,孔径范围为8至248纳米。金属盐的添加可以简单有效地增加碳化后的孔结构,使熔融硅的渗透更容易。这有利于碳化硅陶瓷的连接过程。基于这些发现,开发了一种用于大型(135毫米×205毫米)碳化硅陶瓷的高可靠性连接技术。所得中间层致密且无缺陷,结合强度为309±33兆帕,韦布尔模量为10.67。这些结果突出了结构化多孔介质在推进大型陶瓷连接领域中的关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fb7/12113163/b5f157f778dd/materials-18-02336-g001.jpg

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