Synergistic Band and Multiscale Hybrid Engineering in Polycrystalline TiO 2 for Enhanced Spatial Charge Polarization Relaxation
Xiuyun Ren, Zirui Jia, Zhenguo Gao, Siyuan Zhang, Yu Zhang, Di Lan, Guanglei Wu
Qingdao University Hong Kong Polytechnic University Xi'an Polytechnic University Hubei University of Automotive Technology
阅读操作
确认中在文库中上传 PDF 后可生成中文音频讲解。
摘要与影响
Hybrid structures offer a versatile design platform for semiconductor micro‐nano devices, enabling precise modulation of charge transport and energy conversion/storage. However, optimizing the spatial charge response of hybrids via band structure engineering remains challenging for efficient electromagnetic wave (EMW) absorption. Here, a novel synergistic band and multiscale hybrid engineering is proposed to tailor spatial charge relaxation loss of hybrid semiconductor nanocrystal (HSNCs) nanocomposites. The HSNCs exhibit a unique Co[ Fm‐3m ]/TiO 2 [ I41/amd ]/TiO 2 [ P42/mnm ] polycrystalline structure, driven by tunable coordination and electrostatic interactions between metal‐organic frameworks with distinct coordination topologies and MXene nanosheets. The differentiated charge and energy band structure of the nanocrystals in each phase of HSNCs promotes the delocalization of positive and negative charges and the aggregation of space charges at the interface, thereby promoting spatial charge relaxation, which significantly enhances dielectric loss and electromagnetic energy attenuation, as evidenced by a minimum reflection loss of −45.52 dB. Finally, this work elucidates the hybrid structure‐property relationship in semiconductor nanocomposites, establishing a dynamic polarization physical model across multiple scales, including grain boundaries, unit cells, and atoms, offering valuable perspectives for exploring novel EMW absorption materials.
逐年被引趋势
关键指标
同类平均 = 1
同领域 · 同年份 · 同类型
Google Scholar 与 OpenAlex 的被引统计范围不同,数值存在差异属正常。
AI 辅助阅读
依据:摘要
可就本文提问;依据不足时会说明。
学术脉络
学科主题
材料 / 化学Electromagnetic wave absorption materials
MXene and MAX Phase Materials · 2D Materials and Applications
参考文献 64
此处列出前 3 条
引用本文 30
按被引量排序,此处列出前 3 条