Jing'wen Qi , Jia'qi Zhang , Yu An , Tian'yu Zhang , Ran Wang , Wen'xuan Zhang , Yan'xin Zhang , Ya'nan Yang , Long Xia
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An innovative bonding mechanism for the heterogeneous phase interface was revealed, in which nitrogen doping enabled the formation of lattice defects in LAS ceramic particles and graphene and promoted a closed approach for unsaturated carbon and silicon atoms to form carbon-silicon bonds through the electrostatic force generated by interfacial polarization. Given that covalent bonds are widely recognized as stable carrier channels, the presence of carbon-silicon bonds at the interface facilitates electron migration, ultimately leading to improved microwave absorption. The maximum absorptivity of the LAS/N-GF aerogels could reach −47.98 dB at 8.96 GHz with a filler loading as low as 10 wt%. It is noteworthy that the LAS/N-GF aerogel exhibits an effective absorption bandwidth of 8.34 GHz, which fully spans the entire X-band and more than two-thirds of the Ku-band. Such exceptional performance is rarely observed in dielectric loss materials. Finally, the application potential of the LAS/N-GF aerogels in microwave absorbers was simulated and analysed. The unique chemical phenomenon stemming from the bonding at the carbon material-ceramic interface offers a fresh perspective in interface science, enabling a deeper comprehension of the underlying mechanism of microwave absorption.</div></div>","PeriodicalId":262,"journal":{"name":"Carbon","volume":"232 ","pages":"Article 119794"},"PeriodicalIF":11.6000,"publicationDate":"2025-01-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Nitrogen-doped modified graphene aerogel enhancing interfacial bonding with lithium aluminium silicate ceramics for broadband microwave absorption\",\"authors\":\"Jing'wen Qi , Jia'qi Zhang , Yu An , Tian'yu Zhang , Ran Wang , Wen'xuan Zhang , Yan'xin Zhang , Ya'nan Yang , Long Xia\",\"doi\":\"10.1016/j.carbon.2024.119794\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>The swift progression of e-communication technology has resulted in significant electromagnetic pollution, necessitating the urgent need for effective microwave-absorbing materials to mitigate this issue. 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The maximum absorptivity of the LAS/N-GF aerogels could reach −47.98 dB at 8.96 GHz with a filler loading as low as 10 wt%. It is noteworthy that the LAS/N-GF aerogel exhibits an effective absorption bandwidth of 8.34 GHz, which fully spans the entire X-band and more than two-thirds of the Ku-band. Such exceptional performance is rarely observed in dielectric loss materials. Finally, the application potential of the LAS/N-GF aerogels in microwave absorbers was simulated and analysed. 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引用次数: 0
摘要
电子通信技术的迅猛发展造成了严重的电磁污染,因此迫切需要有效的微波吸收材料来缓解这一问题。增强异质相界面和加入杂原子是提高功能材料电磁特性的可行策略。本研究通过水热法和冷冻干燥法合成了一系列硅酸铝锂玻璃陶瓷/掺氮石墨烯(LAS/N-GF)气凝胶。研究揭示了异质相界面的创新成键机制,其中氮掺杂使得锂硅酸盐陶瓷颗粒和石墨烯形成了晶格缺陷,并通过界面极化产生的静电力促进了不饱和碳原子和硅原子形成碳硅键的封闭方法。鉴于共价键被广泛认为是稳定的载流子通道,界面上碳硅键的存在有利于电子迁移,最终改善微波吸收。填料含量低至 10 wt%时,LAS/N-GF 气凝胶在 8.96 GHz 频率下的最大吸收率可达 -47.98 dB。值得注意的是,LAS/N-GF 气凝胶的有效吸收带宽为 8.34 GHz,完全跨越了整个 X 波段和超过三分之二的 Ku 波段。这种优异的性能在介质损耗材料中很少见。最后,对 LAS/N-GF 气凝胶在微波吸收器中的应用潜力进行了模拟和分析。碳材料-陶瓷界面键合产生的独特化学现象为界面科学提供了一个全新的视角,使人们能够更深入地理解微波吸收的内在机制。
Nitrogen-doped modified graphene aerogel enhancing interfacial bonding with lithium aluminium silicate ceramics for broadband microwave absorption
The swift progression of e-communication technology has resulted in significant electromagnetic pollution, necessitating the urgent need for effective microwave-absorbing materials to mitigate this issue. Augmenting heterogeneous phase interfaces and incorporating heteroatoms constitute viable strategies for enhancing the electromagnetic properties of functional materials. In this study, a series of lithium aluminium silicate glass-ceramic/nitrogen-doped graphene (LAS/N-GF) aerogels was synthesised via the hydrothermal and freeze-drying methods. An innovative bonding mechanism for the heterogeneous phase interface was revealed, in which nitrogen doping enabled the formation of lattice defects in LAS ceramic particles and graphene and promoted a closed approach for unsaturated carbon and silicon atoms to form carbon-silicon bonds through the electrostatic force generated by interfacial polarization. Given that covalent bonds are widely recognized as stable carrier channels, the presence of carbon-silicon bonds at the interface facilitates electron migration, ultimately leading to improved microwave absorption. The maximum absorptivity of the LAS/N-GF aerogels could reach −47.98 dB at 8.96 GHz with a filler loading as low as 10 wt%. It is noteworthy that the LAS/N-GF aerogel exhibits an effective absorption bandwidth of 8.34 GHz, which fully spans the entire X-band and more than two-thirds of the Ku-band. Such exceptional performance is rarely observed in dielectric loss materials. Finally, the application potential of the LAS/N-GF aerogels in microwave absorbers was simulated and analysed. The unique chemical phenomenon stemming from the bonding at the carbon material-ceramic interface offers a fresh perspective in interface science, enabling a deeper comprehension of the underlying mechanism of microwave absorption.
期刊介绍:
The journal Carbon is an international multidisciplinary forum for communicating scientific advances in the field of carbon materials. It reports new findings related to the formation, structure, properties, behaviors, and technological applications of carbons. Carbons are a broad class of ordered or disordered solid phases composed primarily of elemental carbon, including but not limited to carbon black, carbon fibers and filaments, carbon nanotubes, diamond and diamond-like carbon, fullerenes, glassy carbon, graphite, graphene, graphene-oxide, porous carbons, pyrolytic carbon, and other sp2 and non-sp2 hybridized carbon systems. Carbon is the companion title to the open access journal Carbon Trends. Relevant application areas for carbon materials include biology and medicine, catalysis, electronic, optoelectronic, spintronic, high-frequency, and photonic devices, energy storage and conversion systems, environmental applications and water treatment, smart materials and systems, and structural and thermal applications.