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Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers

Two-dimensional (2D) MoS(2)/graphene nanosheet (MoS(2)/GN) hybrids have been demonstrated to be promising microwave absorption (MA) materials due to their unique chemical and physical properties as well as rich impedance matching. However, the reported strategies for preparing MoS(2)/GN hybrids have...

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Autores principales: Chai, Jixing, Zhang, Deqing, Cheng, Junye, Jia, Yixuan, Ba, Xuewei, Gao, Ya, Zhu, Lei, Wang, Hao, Cao, Maosheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9088970/
https://www.ncbi.nlm.nih.gov/pubmed/35558962
http://dx.doi.org/10.1039/c8ra08086k
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author Chai, Jixing
Zhang, Deqing
Cheng, Junye
Jia, Yixuan
Ba, Xuewei
Gao, Ya
Zhu, Lei
Wang, Hao
Cao, Maosheng
author_facet Chai, Jixing
Zhang, Deqing
Cheng, Junye
Jia, Yixuan
Ba, Xuewei
Gao, Ya
Zhu, Lei
Wang, Hao
Cao, Maosheng
author_sort Chai, Jixing
collection PubMed
description Two-dimensional (2D) MoS(2)/graphene nanosheet (MoS(2)/GN) hybrids have been demonstrated to be promising microwave absorption (MA) materials due to their unique chemical and physical properties as well as rich impedance matching. However, the reported strategies for preparing MoS(2)/GN hybrids have limited their application potential due to the complex, high-cost and inefficient preparation processes. On the other hand, it is of note that the main source of graphene is based on converting insulating graphene oxides (GO) back to conductive reduced graphene oxides (RGO). Thus, the MA performance of obtained MoS(2)/RGO nanohybrids is greatly affected by the conversion process of GO. In this work, we prepared the MoS(2)/GN hybrids by a facile hydrothermal method with directly introducing highly pure and electroconductive GNs. It is found that the highest reflection loss value of the sample-wax containing 40% MoS(2)/GN is −57.31 dB at a thickness of 2.58 mm, and the bandwidth of RL values less than −10 dB can reach up to 12.28 GHz (from 5.72 to 18 GHz) when an appropriate absorber thickness between 1.5 and 4 mm is chosen. The excellent MA performances emanate from effective conjugation of MoS(2) with GN (Mo–C bond between the interfaces), which provides the dielectric loss caused by multi-relaxation, conductance, and polarization. Taking into account the facile synthesis route and their excellent MA performance, the MoS(2)/GNs hybrid nanosheets and those composite materials with similar isomorphic hetero-structures are very promising for a wide range of MA applications.
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spelling pubmed-90889702022-05-11 Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers Chai, Jixing Zhang, Deqing Cheng, Junye Jia, Yixuan Ba, Xuewei Gao, Ya Zhu, Lei Wang, Hao Cao, Maosheng RSC Adv Chemistry Two-dimensional (2D) MoS(2)/graphene nanosheet (MoS(2)/GN) hybrids have been demonstrated to be promising microwave absorption (MA) materials due to their unique chemical and physical properties as well as rich impedance matching. However, the reported strategies for preparing MoS(2)/GN hybrids have limited their application potential due to the complex, high-cost and inefficient preparation processes. On the other hand, it is of note that the main source of graphene is based on converting insulating graphene oxides (GO) back to conductive reduced graphene oxides (RGO). Thus, the MA performance of obtained MoS(2)/RGO nanohybrids is greatly affected by the conversion process of GO. In this work, we prepared the MoS(2)/GN hybrids by a facile hydrothermal method with directly introducing highly pure and electroconductive GNs. It is found that the highest reflection loss value of the sample-wax containing 40% MoS(2)/GN is −57.31 dB at a thickness of 2.58 mm, and the bandwidth of RL values less than −10 dB can reach up to 12.28 GHz (from 5.72 to 18 GHz) when an appropriate absorber thickness between 1.5 and 4 mm is chosen. The excellent MA performances emanate from effective conjugation of MoS(2) with GN (Mo–C bond between the interfaces), which provides the dielectric loss caused by multi-relaxation, conductance, and polarization. Taking into account the facile synthesis route and their excellent MA performance, the MoS(2)/GNs hybrid nanosheets and those composite materials with similar isomorphic hetero-structures are very promising for a wide range of MA applications. The Royal Society of Chemistry 2018-10-31 /pmc/articles/PMC9088970/ /pubmed/35558962 http://dx.doi.org/10.1039/c8ra08086k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chai, Jixing
Zhang, Deqing
Cheng, Junye
Jia, Yixuan
Ba, Xuewei
Gao, Ya
Zhu, Lei
Wang, Hao
Cao, Maosheng
Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
title Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
title_full Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
title_fullStr Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
title_full_unstemmed Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
title_short Facile synthesis of highly conductive MoS(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
title_sort facile synthesis of highly conductive mos(2)/graphene nanohybrids with hetero-structures as excellent microwave absorbers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9088970/
https://www.ncbi.nlm.nih.gov/pubmed/35558962
http://dx.doi.org/10.1039/c8ra08086k
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