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将气凝胶集成到范德华晶体中以制备高强度热绝缘体。

Integrating Aerogel into van der Waals Crystals for a High-Strength Thermal Insulator.

作者信息

Park Seokmin, Hong Sunghwan, Kim Taehoon, Oh Donghoon, Choi Hong, Lee Kyu-Yeon, Kim Jiseung, Suh Daewoo, Jung Yeon-Kyoung, Kang Shinill, Park Hyung-Ho, Lim Jungsoo, Shim Wooyoung

机构信息

Department of Materials Science and Engineering, Yonsei University, Seoul 03722, Republic of Korea.

Center for Multi-Dimensional Materials, Yonsei University, Seoul 03722, Republic of Korea.

出版信息

Nano Lett. 2025 Jan 22;25(3):1019-1027. doi: 10.1021/acs.nanolett.4c04767. Epub 2025 Jan 9.

Abstract

Achieving low thermal conductivity and high mechanical strength presents a material design challenge due to intrinsic trade-offs, such as the aerogel's porosity, impeding applications in construction, industry, and aerospace. This study presents a composite that incorporates a silica aerogel within a thermally expanded 2D layered vermiculite matrix. This design overcomes limitations imposed by van der Waals bonding lengths, typically less than 10 Å, which hinder aerogel integration with van der Waals crystals. Our method employs a thermal spark reaction to expand the vermiculite interlayer space, allowing aerogel incorporation. This maintains aerogel's intrinsic low thermal conductivity of 29.6 mW m K, while enhancing its Young's modulus to 66.0 MPa─a more than 10-fold increase over pure aerogel. The innovative embedding of aerogels within van der Waals crystals marks a significant advancement in high-strength insulation technology, paving the way for development in demanding environments that require thermal management without compromising structural integrity.

摘要

由于存在诸如气凝胶孔隙率等内在权衡因素,实现低导热率和高机械强度带来了材料设计挑战,这阻碍了其在建筑、工业和航空航天领域的应用。本研究提出了一种复合材料,该材料在热膨胀的二维层状蛭石基质中掺入了二氧化硅气凝胶。这种设计克服了范德华键长(通常小于10 Å)所带来的限制,范德华键长会阻碍气凝胶与范德华晶体的结合。我们的方法采用热火花反应来扩大蛭石的层间空间,从而能够掺入气凝胶。这保持了气凝胶固有的29.6 mW m K的低导热率,同时将其杨氏模量提高到66.0 MPa,比纯气凝胶增加了10倍以上。气凝胶在范德华晶体中的创新性嵌入标志着高强度隔热技术的重大进步,为在需要热管理且不影响结构完整性的苛刻环境中的发展铺平了道路。

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