Journal Article10.1002/smll.202402729
Multidimensional Engineering Induced Interfacial Polarization by in-Situ Confined Growth of MoS2 Nanosheets for Enhanced Microwave Absorption.
Kai K. Luo,Chunyang Xu,Yiqian Du,Xiaowei Lv,Xiaofen Yang,Min Liu,Wenxuan Zhao,Chang Zhang,Yuxiang Lai,Zhengwang Liu,Renchao Che +10 more
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TL;DR: Researchers develop a novel method to synthesize hollow MoS2@C fibers with multidimensional interfaces, achieving enhanced microwave absorption with a minimum reflection loss of -52.0 dB and a broad effective absorption bandwidth of 4.56 GHz.
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Abstract: Interface design has enormous potential for the enhancement of interfacial polarization and microwave absorption properties. However, the construction of interfaces is always limited in components of a single dimension. Developing systematic strategies to customize multidimensional interfaces and fully utilize advantages of low-dimensional materials remains challenging. Two-dimensional transition metal dichalcogenides (TMDCs) have garnered significant attention owing to their distinctive electrical conductivity and exceptional interfacial effects. In this study, a series of hollow TMDCs@C fibers are synthesized via sacrificial template of CdS and confined growth of TMDCs embedded in the fibers. The complex permittivity of the hollow TMDCs@C fibers can be adjusted by tuning the content of CdS templates. Importantly, the multidimensional interfaces of the fibers contribute to elevating the microwave absorption performance. Among the hollow TMDCs@C fibers, the minimum reflection loss (RLmin) of the hollow MoS2@C fibers can reach -52.0 dB at the thickness of 2.5 mm, with a broad effective absorption bandwidth of 4.56 GHz at 2.0 mm. This work establishes an alternative approach for constructing multidimensional coupling interfaces and optimizing TMDCs as microwave absorption materials.
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Citations
In-situ synthesis of Mo-B co-doped carbon nanofibers for enhanced microwave absorption and radar stealth applications
Qixin Yang,Zeng-Kun Wang,Jingjing Li,Jing Di,Xi-kun Gai,Yaofeng Zhu +5 more
References
Phase-selective synthesis of 1T' MoS 2 monolayers and heterophase bilayers.
Lina Liu,Juanxia Wu,Liyuan Wu,Meng Ye,Xiaozhi Liu,Qian Wang,Siyao Hou,Pengfei Lu,Lifei Sun,Jingying Zheng,Lei Xing,Lin Gu,Xiangwei Jiang,Liming Xie,Liming Xie,Liying Jiao +15 more
TL;DR: This phase-controlled bottom-up synthesis of 1T′ MoS2 monolayers with high phase purity allows us to characterize their intrinsic optical and electrical properties, revealing a characteristic in-plane anisotropy.
421
Hierarchical Ti3C2Tx MXene/Ni Chain/ZnO Array Hybrid Nanostructures on Cotton Fabric for Durable Self-Cleaning and Enhanced Microwave Absorption.
TL;DR: This work provides an insight for rational design of textile-based MA materials, showing potential applications in flexible and wearable functional electronics.
364
Hierarchical Fe3O4/Fe@C@MoS2 core-shell nanofibers for efficient microwave absorption
Zhouyu Tong,Zijian Liao,Yanyan Liu,Mingliang Ma,Yuxin Bi,Weibo Huang,Yong Ma,Mingtao Qiao,Guanglei Wu +8 more
TL;DR: In this article, a hierarchical structure of Fe3O4/Fe@C@MoS2 nanofibers was successfully obtained via a simple three-step method, which can meet the current demand for high-performance microwave absorption (MA) materials.
272
Electrostatic self-assembly construction of 2D MoS2 wrapped hollow Fe3O4 nanoflowers@1D carbon tube hybrids for self-cleaning high-performance microwave absorbers
TL;DR: In this article, a 1D heterostructure hybrid was successfully synthesized through anchoring the flower-like 2D MoS2@Fe3O4 0D nanospheres on the surface of the 1D hollow carbon microtubes (CT) derived from cattail by electrostatic self-assembly.
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Synergistic Polarization Loss of MoS2‐Based Multiphase Solid Solution for Electromagnetic Wave Absorption
Zhenguo Gao,Zhenhui Ma,Di Lan,Zehao Zhao,Limin Zhang,Hongjing Wu,Yanglong Hou +6 more
TL;DR: In this paper , a novel metal-organic cooperative interactions method is proposed to manipulate the vacancy, interstitial, substitutional, and heterointerface structures in molybdenum disulfide (MoS2) solid solution simultaneously, thence meeting the synergistic polarization loss on various point and face sites.
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