Mass production of two-dimensional materials beyond graphene and their applications

被引:69
|
作者
Yang, Liusi [1 ,2 ]
Chen, Wenjun [1 ,2 ]
Yu, Qiangmin [1 ,2 ]
Liu, Bilu [1 ,2 ]
机构
[1] Tsinghua Univ, Shenzhen Geim Graphene Ctr, Tsinghua Berkeley Shenzhen Inst, Shenzhen 518055, Peoples R China
[2] Tsinghua Univ, Tsinghua Shenzhen Int Grad Sch, Shenzhen 518055, Peoples R China
基金
中国国家自然科学基金;
关键词
two-dimensional (2D) materials; mass production; top-down" exfoliation; bottom-up" synthesis; applications; BLACK-PHOSPHORUS; HYDROGEN EVOLUTION; METAL-OXIDES; MICROWAVE-ABSORPTION; SCALABLE PRODUCTION; CARBON NANOTUBES; MOS2; NANOSHEETS; EXFOLIATION; MXENE; PERFORMANCE;
D O I
10.1007/s12274-020-2897-3
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Two-dimensional (2D) materials are promising candidates in wide applications including energy storage and conversion, sensors, flexible devices, etc. The low-cost production of 2D materials with large quantities and demanded quality is the precondition for their commercial uses. For graphene and its derivatives, relatively mature techniques have been established for their scalable preparation and industrial applications. Whereas the mass production of 2D materials beyond graphene is still in its early age and it lacks a summary on this topic. This review systematically describes the state-of-the-art approaches for high-yield preparation of 2D materials beyond graphene, including "top-down" exfoliation and "bottom-up" synthetic approaches. In particular, each method is discussed from the perspectives of its principle, optimization attempts, characteristics of the obtained 2D materials, and its scalability potential. The applications that require massively-produced 2D materials are highlighted, including electrocatalysis, batteries, supercapacitors, mechanical and chemical sensors, as well as electromagnetic interference shielding and microwave absorption devices. Finally, we propose the challenges and opportunities for scalable preparation and commercial applications of 2D materials.
引用
收藏
页码:1583 / 1597
页数:15
相关论文
共 50 条
  • [41] Beyond Graphene: Progress in Novel Two-Dimensional Materials and van der Waals Solids
    Das, Saptarshi
    Robinson, Joshua A.
    Dubey, Madan
    Terrones, Humberto
    Terrones, Mauricio
    ANNUAL REVIEW OF MATERIALS RESEARCH, VOL 45, 2015, 45 : 1 - 27
  • [42] Mass production and industrial applications of graphene materials
    Yanwu Zhu
    Hengxing Ji
    Hui-Ming Cheng
    Rodney S.Ruoff
    National Science Review, 2018, 5 (01) : 90 - 101
  • [43] Mass production and industrial applications of graphene materials
    Zhu, Yanwu
    Ji, Hengxing
    Cheng, Hui-Ming
    Ruoff, Rodney S.
    NATIONAL SCIENCE REVIEW, 2018, 5 (01) : 90 - 101
  • [44] Graphene-Like Two-Dimensional Materials
    Xu, Mingsheng
    Liang, Tao
    Shi, Minmin
    Chen, Hongzheng
    CHEMICAL REVIEWS, 2013, 113 (05) : 3766 - 3798
  • [45] Graphene and Two-Dimensional Materials for Biomolecule Sensing
    Ban, Deependra Kumar
    Bandaru, Prabhakar R.
    ANNUAL REVIEW OF BIOPHYSICS, 2023, 52 : 487 - 507
  • [46] Polycrystalline graphene and other two-dimensional materials
    Yazyev, Oleg V.
    Chen, Yong P.
    NATURE NANOTECHNOLOGY, 2014, 9 (10) : 755 - 767
  • [47] Graphene and two-dimensional materials for silicon technology
    Deji Akinwande
    Cedric Huyghebaert
    Ching-Hua Wang
    Martha I. Serna
    Stijn Goossens
    Lain-Jong Li
    H.-S. Philip Wong
    Frank H. L. Koppens
    Nature, 2019, 573 : 507 - 518
  • [48] Graphene and two-dimensional materials for silicon technology
    Akinwande, Deji
    Huyghebaert, Cedric
    Wang, Ching-Hua
    Serna, Martha I.
    Goossens, Stijn
    Li, Lain-Jong
    Wong, H. -S. Philip
    Koppens, Frank H. L.
    NATURE, 2019, 573 (7775) : 507 - 518
  • [49] Polycrystalline graphene and other two-dimensional materials
    Oleg V. Yazyev
    Yong P. Chen
    Nature Nanotechnology, 2014, 9 : 755 - 767
  • [50] Two-dimensional nanomaterials beyond graphene for antibacterial applications: current progress and future perspectives
    Mei, Linqiang
    Zhu, Shuang
    Yin, Wenyan
    Chen, Chunying
    Nie, Guangjun
    Gu, Zhanjun
    Zhao, Yuliang
    THERANOSTICS, 2020, 10 (02): : 757 - 781