Architecture Design and Interface Engineering of Self-assembly VS/rGO Heterostructures for Ultrathin Absorbent
Overview
Authors
Affiliations
The employment of microwave absorbents is highly desirable to address the increasing threats of electromagnetic pollution. Importantly, developing ultrathin absorbent is acknowledged as a linchpin in the design of lightweight and flexible electronic devices, but there are remaining unprecedented challenges. Herein, the self-assembly VS/rGO heterostructure is constructed to be engineered as ultrathin microwave absorbent through the strategies of architecture design and interface engineering. The microarchitecture and heterointerface of VS/rGO heterostructure can be regulated by the generation of VS nanorods anchored on rGO, which can effectively modulate the impedance matching and attenuation constant. The maximum reflection loss of 2VS/rGO40 heterostructure can reach - 43.5 dB at 14 GHz with the impedance matching and attenuation constant approaching 0.98 and 187, respectively. The effective absorption bandwidth of 4.8 GHz can be achieved with an ultrathin thickness of 1.4 mm. The far-reaching comprehension of the heterointerface on microwave absorption performance is explicitly unveiled by experimental results and theoretical calculations. Microarchitecture and heterointerface synergistically inspire multi-dimensional advantages to enhance dipole polarization, interfacial polarization, and multiple reflections and scatterings of microwaves. Overall, the strategies of architecture design and interface engineering pave the way for achieving ultrathin and enhanced microwave absorption materials.
Zhuang W, Jang H, Sui X, Ryu B, Wang Y, Pu H ACS Appl Mater Interfaces. 2024; 16(21):27961-27968.
PMID: 38749768 PMC: 11145583. DOI: 10.1021/acsami.4c03999.
He Y, Liu X, Lei J, Ma L, Zhang X, Wang H J Nanobiotechnology. 2024; 22(1):31.
PMID: 38229126 PMC: 10792985. DOI: 10.1186/s12951-023-02283-6.
Heterodimensional Structure Switching Multispectral Stealth and Multimedia Interaction Devices.
Shu J, Cao M, Zhang Y, Cao W Adv Sci (Weinh). 2023; 10(26):e2302361.
PMID: 37431193 PMC: 10502863. DOI: 10.1002/advs.202302361.
Jiao Z, Huyan W, Yang F, Yao J, Tan R, Chen P Nanomicro Lett. 2022; 14(1):173.
PMID: 35999287 PMC: 9399338. DOI: 10.1007/s40820-022-00904-7.
An All-In-One Multifunctional Touch Sensor with Carbon-Based Gradient Resistance Elements.
Wei C, Lin W, Liang S, Chen M, Zheng Y, Liao X Nanomicro Lett. 2022; 14(1):131.
PMID: 35699779 PMC: 9198138. DOI: 10.1007/s40820-022-00875-9.