Fabrication and Characterization of Large-Area, Semiconducting Nanoperforated Graphene Materials

被引:290
|
作者
Kim, Myungwoong [1 ]
Safron, Nathaniel S. [1 ]
Han, Eungnak [1 ]
Arnold, Michael S. [1 ]
Gopalan, Padma [1 ]
机构
[1] Univ Wisconsin, Dept Mat Sci & Engn, Madison, WI 53706 USA
基金
美国国家科学基金会;
关键词
Graphene; graphite; band gap; mobility gap; transistor; field effect; block copolymer; soft; lithography; nanopatterning; nanoperforaced; honeycomb; anti-dot; large area; nanomaterials; BLOCK-COPOLYMERS; LITHOGRAPHY; ORIENTATION;
D O I
10.1021/nl9032318
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We demonstrate the fabrication of nanoperforated graphene materials with sub-20-nm features using cylinder-forming diblock copolymer templates across > 1 mm(2) areas. Hexagonal arrays of holes are etched into graphene membranes, and the remaining constrictions between holes interconnect forming a honeycomb structure. Quantum confinement. disorder, and localization effects modulate the electronic structure, opening an effective energy gap of 100 rneV in the nanopatterned material. The field-effect conductivity can be modulated by 40x (200x) at room temperature (T = 105 K) as a result, A room temperature hole mobility of 1 cm(2) V-1 s(-1) was measured in the fabricated nanoperforated graphene held effect transistors. This scalable strategy for modulating the electronic structure of graphene is expected to facilitate applications of graphene in electronics, optoelectronics, and sensing.
引用
收藏
页码:1125 / 1131
页数:7
相关论文
共 50 条
  • [31] Large-area YBCO films for device fabrication
    Tian, YJ
    Linzen, S
    Schmidl, F
    Cihar, R
    Seidel, P
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 1998, 11 (01): : 59 - 62
  • [32] Fabrication of large-area nickel nanobump arrays
    Chen, X.
    Wei, X.
    Jiang, K.
    MICROELECTRONIC ENGINEERING, 2009, 86 (4-6) : 871 - 873
  • [33] Nondestructive Characterization of the Structural Quality and Thickness of Large-Area Graphene on Various Substrates
    Liu, Yu-Lun
    Yu, Chen-Chieh
    Lin, Keng-Te
    Wang, En-Yun
    Yang, Tai-Chi
    Chen, Hsuen-Li
    Chen, Chun-Wei
    Chang, Cheng-Kai
    Chen, Li-Chyong
    Chen, Kuei-Hsien
    ANALYTICAL CHEMISTRY, 2014, 86 (15) : 7192 - 7199
  • [34] Terahertz and Infrared Conductivity of Large-Area Graphene
    Ren, Lei
    Zhang, Qi
    Booshehri, Layla G.
    Haroz, Erik H.
    Arikawa, Takashi
    Nanot, Sebastien
    Kono, Junichiro
    Sun, Zhengzong
    Yan, Zheng
    Yao, Jun
    Jin, Zhong
    Tour, James M.
    2011 36TH INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER, AND TERAHERTZ WAVES (IRMMW-THZ), 2011,
  • [35] Mapping the electrical properties of large-area graphene
    Boggild, Peter
    Mackenzie, David M. A.
    Whelan, Patrick R.
    Petersen, Dirch H.
    Buron, Jonas Due
    Zurutuza, Amaia
    Gallop, John
    Hao, Ling
    Jepsen, Peter U.
    2D MATERIALS, 2017, 4 (04):
  • [36] Synthesis of large-area graphene for energy applications
    Hong, Byung Hee
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 244
  • [37] Large-area suspended graphene on GaN nanopillars
    Lee, Chongmin
    Kim, Byung-Jae
    Ren, Fan
    Pearton, S. J.
    Kim, Jihyun
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 2011, 29 (06):
  • [38] Flexible organic solar cells: Materials, large-area fabrication techniques and potential applications
    Liu, Chunhui
    Xiao, Chengyi
    Xie, Chengcheng
    Li, Weiwei
    NANO ENERGY, 2021, 89
  • [39] Complementary Chemical Vapor Deposition Fabrication for Large-Area Uniform Graphene Glass Fiber Fabric
    Liu, Ruojuan
    Yuan, Hao
    Li, Junliang
    Huang, Kewen
    Wang, Kun
    Cheng, Yi
    Cheng, Shuting
    Li, Wenjuan
    Jiang, Jun
    Tu, Ce
    Qi, Yue
    Liu, Zhongfan
    SMALL METHODS, 2022, 6 (07)
  • [40] Direct Top-Down Fabrication of Large-Area Graphene Arrays by an In Situ Etching Method
    Geng, Dechao
    Wang, Huaping
    Wan, Yu
    Xu, Zhiping
    Luo, Birong
    Xu, Jie
    Yu, Gui
    ADVANCED MATERIALS, 2015, 27 (28) : 4195 - 4199