Lignin‐Derived Lightweight Carbon Aerogels for Tunable Epsilon‐Negative Response

Author:

Qu Yunpeng1,Zhou Yunlei2,Yang Qiuyun1,Cao Jun3,Liu Yao4,Qi Xiaosi1,Jiang Shan2567ORCID

Affiliation:

1. College of Physics Guizhou University Guiyang 550025 China

2. Hangzhou Institute of Technology Xidian University Hangzhou 311200 China

3. School of Geography, Geomatics and Planning Jiangsu Normal University Xuzhou 221116 China

4. Key Laboratory for Liquid‐Solid Structural Evolution and Processing of Materials (Ministry of Education) Shandong University Jinan 250061 China

5. School of Mechano‐Electronic Engineering Xidian University Xi'an 710071 China

6. Jianghuai Advance Technology Center Hefei 230000 China

7. State Key Laboratory of Intelligent Manufacturing Equipment and Technology Huazhong University of Science and Technology Wuhan 430074 China

Abstract

AbstractElectromagnetic (EM) metamaterials have garnered considerable attention due to their capacity to achieve negative parameters, significantly influencing the integration of natural materials with artificially structural media. The emergence of carbon aerogels (CAs) offers an opportunity to create lightweight EM metamaterials, notable for their promising EM shielding or absorption effects. This paper introduces an efficient, low‐cost method for fabricating CAs without requiring stringent drying conditions. By finely tuning the ZnCl2/lignin ratio, the porosity is controlled in CAs. This control leads to an epsilon‐negative response in the radio‐frequency region, driven by the intrinsic plasmonic state of the 3D carbon network, as opposed to traditional periodic building blocks. This approach yields a tunable and weakly epsilon‐negative response, reaching an order of magnitude of −103 under MHz frequencies. Equivalent circuit analysis highlights the inductive characteristics of CAs, correlating their significant dielectric loss at low frequencies. Additionally, EM simulations are performed to evaluate the distribution of the electric field vector in epsilon‐negative CAs, showcasing their potential for effective EM shielding. The lignin‐derived, lightweight CAs with their tunable epsilon‐negative response hold promise for pioneering new directions in EM metamaterials and broadening their application in diverse extreme conditions.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Aeronautical Science Foundation of China

Publisher

Wiley

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