Liu Xiaoyan, Ma Wenle, Yang Tianyue, Qiu Zhengrong, Wang Jianbin, Li Yuhao, Wang Yang, Huang Yi
School of Materials Science and Engineering, National Institute for Advanced Materials, Nankai University, Tianjin 300350, China.
ACS Nano. 2024 Apr 9;18(14):10184-10195. doi: 10.1021/acsnano.4c00193. Epub 2024 Mar 26.
Heterointerface engineering is an attractive approach to modulating electromagnetic (EM) parameters and EM wave absorption performance. However, the weak interfacial interactions and poor impedance matching would lead to unsatisfactory EM absorption performance due to the limitation of the construction materials and design strategies. Herein, multilevel heterointerface engineering is proposed by in situ growing nanosheet-like NiCoO and selenides with abundant interface structures on 3D-printed graphene aerogel (GA) skeletons, which strengthens the interfacial effect and improves the dielectric polarization loss. Benefiting from the features of substantially enhanced polarization loss and optimized impedance matching, the graphene/S-NiCoO/selenides (G/S-NCO/Se) have achieved brilliant EM wave absorption performance with a strong reflection loss (RL) value of -60.7 dB and a broad effective absorption bandwidth (EAB) of 8 GHz, which is about six times greater than that of the graphene aerogel (-9.8 dB). Moreover, it is further confirmed by charge density differences and off-axis electron holography that a large amount of polarized charge accumulates at the interface, leading to significant polarization relaxation behaviors. This work provides a deep understanding of the effect of a multilevel heterogeneous interface on dielectric polarization loss, which injects a fresh and infinite vitality for designing high-efficiency EM wave absorbers.
异质界面工程是一种调控电磁(EM)参数和电磁波吸收性能的有吸引力的方法。然而,由于构建材料和设计策略的限制,弱界面相互作用和不良的阻抗匹配会导致不令人满意的电磁波吸收性能。在此,通过在3D打印的石墨烯气凝胶(GA)骨架上原位生长具有丰富界面结构的纳米片状NiCoO和硒化物,提出了多级异质界面工程,这增强了界面效应并改善了介电极化损耗。得益于显著增强的极化损耗和优化的阻抗匹配特性,石墨烯/S-NiCoO/硒化物(G/S-NCO/Se)实现了出色的电磁波吸收性能,具有-60.7 dB的强反射损耗(RL)值和8 GHz的宽有效吸收带宽(EAB),这大约是石墨烯气凝胶(-9.8 dB)的六倍。此外,通过电荷密度差和离轴电子全息术进一步证实,大量极化电荷在界面处积累,导致显著的极化弛豫行为。这项工作深入理解了多级异质界面在介电极化损耗方面的作用,为设计高效电磁波吸收体注入了新的、无限的活力。