Wu Zhengchen, Yang Ziqi, Jin Chen, Zhao Yunhao, Che Renchao
Laboratory of Advanced Materials, Department of Materials Science and Collaborative Innovation Center of Chemistry for Energy Materials (iChem), Fudan University, Shanghai 200438, P. R. China.
ACS Appl Mater Interfaces. 2021 Feb 3;13(4):5866-5876. doi: 10.1021/acsami.0c21833. Epub 2021 Jan 24.
The accurate heterojunction engineering in MXene-based composites unprecedentedly boosts their electromagnetic (EM) wave absorption and shielding performance. However, the flocculation of MXene caused by abundant termination groups severely restricts the regulation of heterojunction, which hankers for a revolutionary compositing strategy against unmanageable self-aggregation. Herein, electrically neutral coordination compound with large molecular volume is decorated on TiCT lamellas to protect them from self-precipitation. A rapid polymerization reaction then controllably assembles them into a hierarchical microsphere composed of superlattice-like 2/2D polymer/MXene building blocks. In the carbonized TiCT/C/MoO microspheres, 2/2D/0D heterojunctions can be precisely tuned to regulate electric/dielectric properties. These heterojunctions simultaneously trigger the intensive interfacial polarization and out-plane electron flowing to exhaust the EM energy as much as possible, confirmed by electron holography. Therefore, our products achieve the first-rate EM wave absorption with an ultrabroad absorption bandwidth of 7.7 GHz at the thickness of 2.5 mm. By altering the heterojunction, the composite acquires excellent EM interference shielding performance with an average shielding effectiveness of 35.9 dB. These accomplishments light a new way to microstructure construction and heterojunction design of MXene-based composites and lay out a profound insight into their EM wave absorption mechanism.
基于MXene的复合材料中精确的异质结工程前所未有的提高了它们的电磁波吸收和屏蔽性能。然而,大量端基导致的MXene絮凝严重限制了异质结的调控,这迫切需要一种革命性的复合策略来对抗难以控制的自聚集。在此,将具有大分子体积的电中性配位化合物修饰在TiCT薄片上,以保护它们不发生自沉淀。然后,通过快速聚合反应将它们可控地组装成由超晶格状2/2D聚合物/MXene构建块组成的分级微球。在碳化的TiCT/C/MoO微球中,可以精确调节2/2D/0D异质结以调控电学/介电性能。这些异质结同时引发强烈的界面极化和面外电子流动,以尽可能耗尽电磁能量,这一点已通过电子全息术得到证实。因此,我们的产品在2.5毫米厚度下实现了一流的电磁波吸收,具有7.7吉赫兹的超宽吸收带宽。通过改变异质结,该复合材料获得了优异的电磁干扰屏蔽性能,平均屏蔽效能为35.9分贝。这些成果为基于MXene的复合材料的微观结构构建和异质结设计开辟了一条新途径,并对其电磁波吸收机制提供了深刻的见解。