Zhang Xinci, Shi Yanan, Xu Jia, Ouyang Qiuyun, Zhang Xiao, Zhu Chunling, Zhang Xiaoli, Chen Yujin
Key Laboratory of In-Fiber Integrated Optics, College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin, 150001, People's Republic of China.
College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, People's Republic of China.
Nanomicro Lett. 2021 Dec 11;14(1):27. doi: 10.1007/s40820-021-00773-6.
Atomically dispersed metals on N-doped carbon supports (M-NCs) have great potential applications in various fields. However, a precise understanding of the definitive relationship between the configuration of metal single atoms and the dielectric loss properties of M-NCs at the atomic-level is still lacking. Herein, we report a general approach to synthesize a series of three-dimensional (3D) honeycomb-like M-NC (M = Mn, Fe, Co, Cu, or Ni) containing metal single atoms. Experimental results indicate that 3D M-NCs exhibit a greatly enhanced dielectric loss compared with that of the NC matrix. Theoretical calculations demonstrate that the density of states of the d orbitals near the Fermi level is significantly increased and additional electrical dipoles are induced due to the destruction of the symmetry of the local microstructure, which enhances conductive loss and dipolar polarization loss of 3D M-NCs, respectively. Consequently, these 3D M-NCs exhibit excellent electromagnetic wave absorption properties, outperforming the most commonly reported absorbers. This study systematically explains the mechanism of dielectric loss at the atomic level for the first time and is of significance to the rational design of high-efficiency electromagnetic wave absorbing materials containing metal single atoms.
负载于氮掺杂碳载体上的原子级分散金属(M-NCs)在各个领域具有巨大的潜在应用价值。然而,目前仍缺乏对金属单原子构型与M-NCs介电损耗特性在原子层面上确切关系的精确理解。在此,我们报道了一种通用方法,用于合成一系列包含金属单原子的三维(3D)蜂窝状M-NC(M = Mn、Fe、Co、Cu或Ni)。实验结果表明,与NC基体相比,3D M-NCs表现出显著增强的介电损耗。理论计算表明,由于局部微观结构对称性的破坏,费米能级附近d轨道的态密度显著增加,并诱导出额外的电偶极子,这分别增强了3D M-NCs的传导损耗和偶极极化损耗。因此,这些3D M-NCs表现出优异的电磁波吸收性能,优于最常报道的吸收剂。本研究首次系统地解释了原子层面的介电损耗机制,对于合理设计含金属单原子的高效电磁波吸收材料具有重要意义。