材料科学
兴奋剂
电导率
宽带
放松(心理学)
调制(音乐)
结构材料
黛比
接口(物质)
凝聚态物理
光电子学
光学
复合材料
化学
物理化学
物理
声学
心理学
毛细管作用
社会心理学
毛细管数
作者
Yunfei He,Dongdong Liu,Sihao Dou,Long Ma,Dan Zhang,Minghao Yang,Bo Zhong,Long Xia,Xiaoxiao Huang
标识
DOI:10.26599/jac.2025.9221150
摘要
The development of Ti3C2Tx MXene-based electromagnetic wave-absorbing materials faces a persistent challenge in balancing conductivity loss and polarization relaxation. To resolve this conflict, we propose an "interface engineering - Human-Computer Interaction (HCI)" strategy to regulate the evolution of permittivity and decouple the interdependency between conductivity (σ) and relaxation time (τ). First, by integrating the Debye relaxation model and transmission line theory into Python-based interactive modules, an HCI framework is established that quantitatively guides the optimization of permittivity trends and provides feedback on intrinsic Debye-parameter variations. Subsequently, guided by these theoretical optimizations, nitrogen-doped SiO2-coated Ti3C2Clx MXene composites (SMX) are prepared via interface engineering. The insulating SiO2 layer suppresses excessive σ while introducing heterogeneous interfaces that prolong τ. Meanwhile, the surface heterogeneous dipole generated by nitrogen-doping induces a hysteresis of τ. Consequently, this theory-guided design enables the optimized SMX-S2-N1 to achieve a 5.2 GHz effective absorption bandwidth, overcoming the inherent limitation of narrow absorption bandwidth in MXene single-component materials. This study not only addresses the restricted absorption bandwidth of monolithic MXenes but also offers a mechanistic understanding of dielectric loss through Debye model analysis, bridging semi-empirical design principles with theoretical frameworks.
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