Balancing MXene Surface Termination and Interlayer Spacing Enables Superior Microwave Absorption

Author:

Du Yiqian1,Yan Zhikai2,You Wenbin1,Men Qiaoqiao2,Chen Guanyu1,Lv Xiaowei1,Wu Yuyang1,Luo Kaicheng1,Zhao Biao13,Zhang Jincang4,Che Renchao134ORCID

Affiliation:

1. Laboratory of Advanced Materials Shanghai Key Lab of Molecular Catalysis and Innovative Materials Academy for Engineering & Technology Fudan University Shanghai 200438 P. R. China

2. Henan Key Laboratory of Aeronautical Materials and Application Technology School of Material Science and Engineering Zhengzhou University of Aeronautics Zhengzhou Henan 450046 P. R. China

3. School of Microelectronics Fudan University Shanghai 2000433 P. R. China

4. Zhejiang Laboratory Hangzhou 311100 P. R. China

Abstract

AbstractSurface chemistry and interlayer engineering determines the electrical properties of 2D MXene. However, it remains challenging to regulate the surface and interfacial chemistry of MXene simultaneously. Herein, simultaneous modulation of Ti3C2Tx MXene surface termination and layer spacing by alkali treatment are achieved. The electrical and electromagnetic properties of Ti3C2Tx are investigated in detail with respect to KOH and ammonia concentration dependence. A high concentration of KOH caused the Ti3C2Tx layer spacing to expand to 13.7 Å and the surface O/F ratio to increase to 33.84. Because of its weaker ionization effect, ammonia provides finer tuning compared to the drastic intercalation of KOH with a thorough sweeping of the F‐containing groups. Ti3C2Tx is enriched with conductive ‐OH termination after ammonia treatment, which achieves an effective balance with the increased interlayer resistance. Therefore, NH3H2O‐Ti3C2Tx achieves broad‐band impedance matching and exhibits an efficient microwave loss of −49.1 dB at a low thickness of 1.7 mm, with an effective frequency bandwidth of 3.9 GHz. The results herein optimize the electrical properties of Ti3C2Tx using surface and interfacial chemistry to achieve broad microwave absorption, providing a framework for enhancing the electromagnetic wave loss of intrinsic MXene.

Funder

National Natural Science Foundation of China

Program of Shanghai Academic Research Leader

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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