Fast synthesis of large-area bilayer graphene film on Cu

被引:0
|
作者
Jincan Zhang
Xiaoting Liu
Mengqi Zhang
Rui Zhang
Huy Q. Ta
Jianbo Sun
Wendong Wang
Wenqing Zhu
Tiantian Fang
Kaicheng Jia
Xiucai Sun
Xintong Zhang
Yeshu Zhu
Jiaxin Shao
Yuchen Liu
Xin Gao
Qian Yang
Luzhao Sun
Qin Li
Fushun Liang
Heng Chen
Liming Zheng
Fuyi Wang
Wanjian Yin
Xiaoding Wei
Jianbo Yin
Thomas Gemming
Mark. H. Rummeli
Haihui Liu
Hailin Peng
Li Lin
Zhongfan Liu
机构
[1] Peking University,Center for Nanochemistry, Beijing Science and Engineering Center for Nanocarbons, Beijing National Laboratory for Molecular Science, College of Chemistry and Molecular Engineering
[2] Beijing Graphene Institute,Academy for Advanced Interdisciplinary Studies
[3] Peking University,Department of Engineering
[4] University of Cambridge,School of Material Science and Engineering, Tianjin Key Laboratory of Advanced Fibers and Energy Storage, State Key Laboratory of Separation Membranes and Membrane Processes
[5] Tiangong University,Department of Physics and Astronomy
[6] University of Manchester,State Key Laboratory for Turbulence and Complex System, Department of Mechanics and Engineering Science, College of Engineering
[7] Leibniz Institute for Solid State and Materials Research Dresden,CAS Key Laboratory of Analytical Chemistry for Living Biosystems
[8] Peking University,Beijing National Laboratory for Molecular Sciences
[9] Institute of Chemistry,Soochow Institute for Energy and Materials Innovations
[10] Chinese Academy of Sciences,Centre of Polymer and Carbon Materials
[11] National Centre for Mass Spectrometry in Beijing,Institute of Environmental Technology
[12] CAS Key Laboratory of Analytical Chemistry for Living Biosystems,School of Materials Science and Engineering
[13] Institute of Chemistry,undefined
[14] Chinese Academy of Sciences,undefined
[15] Soochow University,undefined
[16] Polish Academy of Sciences,undefined
[17] VŠB -Technical University of Ostrava,undefined
[18] Peking University,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Bilayer graphene (BLG) is intriguing for its unique properties and potential applications in electronics, photonics, and mechanics. However, the chemical vapor deposition synthesis of large-area high-quality bilayer graphene on Cu is suffering from a low growth rate and limited bilayer coverage. Herein, we demonstrate the fast synthesis of meter-sized bilayer graphene film on commercial polycrystalline Cu foils by introducing trace CO2 during high-temperature growth. Continuous bilayer graphene with a high ratio of AB-stacking structure can be obtained within 20 min, which exhibits enhanced mechanical strength, uniform transmittance, and low sheet resistance in large area. Moreover, 96 and 100% AB-stacking structures were achieved in bilayer graphene grown on single-crystal Cu(111) foil and ultraflat single-crystal Cu(111)/sapphire substrates, respectively. The AB-stacking bilayer graphene exhibits tunable bandgap and performs well in photodetection. This work provides important insights into the growth mechanism and the mass production of large-area high-quality BLG on Cu.
引用
收藏
相关论文
共 50 条
  • [31] Antibacterial activity of large-area monolayer graphene film manipulated by charge transfer
    Jinhua Li
    Gang Wang
    Hongqin Zhu
    Miao Zhang
    Xiaohu Zheng
    Zengfeng Di
    Xuanyong Liu
    Xi Wang
    Scientific Reports, 4
  • [32] The large-area preparation and photoelectrochemical properties of graphene/ZnO nanorod composite film
    Wu, Hongyan
    Zhao, Xingming
    Li, Jianliang
    Dong, Songtao
    RSC ADVANCES, 2017, 7 (88) : 55673 - 55679
  • [33] Antibacterial activity of large-area monolayer graphene film manipulated by charge transfer
    Li, Jinhua
    Wang, Gang
    Zhu, Hongqin
    Zhang, Miao
    Zheng, Xiaohu
    Di, Zengfeng
    Liu, Xuanyong
    Wang, Xi
    SCIENTIFIC REPORTS, 2014, 4
  • [34] Probing Bilayer Grain Boundaries in Large-Area Graphene with Tip-Enhanced Raman Spectroscopy
    Park, Kyoung-Duck
    Raschke, Markus B.
    Atkin, Joanna M.
    Lee, Young Hee
    Jeong, Mun Seok
    ADVANCED MATERIALS, 2017, 29 (07)
  • [35] Highly Conductive and Transparent Large-Area Bilayer Graphene Realized by MoCl5 Intercalation
    Kinoshita, Hiroki
    Jeon, Il
    Maruyama, Mina
    Kawahara, Kenji
    Terao, Yuri
    Ding, Dong
    Matsumoto, Rika
    Matsuo, Yutaka
    Okada, Susumu
    Ago, Hiroki
    ADVANCED MATERIALS, 2017, 29 (41)
  • [36] Synthesis of large-area graphene on molybdenum foils by chemical vapor deposition
    Wu, Yuanwen
    Yu, Guanghui
    Wang, Haomin
    Wang, Bin
    Chen, Zhiying
    Zhang, Yanhui
    Wang, Bin
    Shi, Xiaoping
    Xie, Xiaoming
    Jin, Zhi
    Liu, Xinyu
    CARBON, 2012, 50 (14) : 5226 - 5231
  • [37] Large-area single-crystal AB-bilayer and ABA-trilayer graphene grown on a Cu/Ni(111) foil
    Huang, Ming
    Bakharev, Pavel V.
    Wang, Zhu-Jun
    Biswal, Mandakini
    Yang, Zheng
    Jin, Sunghwan
    Wang, Bin
    Park, Hyo Ju
    Li, Yunqing
    Qu, Deshun
    Kwon, Youngwoo
    Chen, Xianjue
    Lee, Sun Hwa
    Willinger, Marc-Georg
    Yoo, Won Jong
    Lee, Zonghoon
    Ruoff, Rodney S.
    NATURE NANOTECHNOLOGY, 2020, 15 (04) : 289 - +
  • [38] Large-area single-crystal AB-bilayer and ABA-trilayer graphene grown on a Cu/Ni(111) foil
    Ming Huang
    Pavel V. Bakharev
    Zhu-Jun Wang
    Mandakini Biswal
    Zheng Yang
    Sunghwan Jin
    Bin Wang
    Hyo Ju Park
    Yunqing Li
    Deshun Qu
    Youngwoo Kwon
    Xianjue Chen
    Sun Hwa Lee
    Marc-Georg Willinger
    Won Jong Yoo
    Zonghoon Lee
    Rodney S. Ruoff
    Nature Nanotechnology, 2020, 15 : 289 - 295
  • [39] Controllable and Rapid Synthesis of High-Quality and Large-Area Bernal Stacked Bilayer Graphene Using Chemical Vapor Deposition
    Liu, Wei
    Kraemer, Stephan
    Sarkar, Deblina
    Li, Hong
    Ajayan, Pulickel M.
    Banerjeet, Kaustav
    CHEMISTRY OF MATERIALS, 2014, 26 (02) : 907 - 915
  • [40] Controllable Synthesis of Large-Area MoSe2 Monolayer Films and Bilayer Crystals
    Yan, Wei
    Wan, Jihong
    Zhao, Bingbing
    Zhang, Zhi
    Meng, Lan
    Li, Xing-ao
    JOURNAL OF PHYSICAL CHEMISTRY C, 2024, 128 (46): : 19849 - 19855