Direct writing of graphene patterns on insulating substrates under ambient conditions

被引:0
作者
Wei Xiong
Yun Shen Zhou
Wen Jia Hou
Li Jia Jiang
Yang Gao
Li Sha Fan
Lan Jiang
Jean Francois Silvain
Yong Feng Lu
机构
[1] University of Nebraska-Lincoln,Department of Electrical Engineering
[2] Beijing Institute of Technology,Department of Mechanical and Automation Engineering
[3] Institute of Chemistry of Condensed Matter of Bordeaux,undefined
[4] ICMCB-CNRS 87,undefined
来源
Scientific Reports | / 4卷
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摘要
To unleash the full potential of graphene in electronics and optoelectronics, high-quality graphene patterns on insulating substrates are required. However, existing methods generally follow a “synthesis + patterning” strategy, which are time consuming and costly for fabricating high-quality graphene patterns on desired substrates. We developed a nanofabrication process to deposit high-quality graphene patterns directly on insulating substrates via a solid-phase laser direct writing (LDW) process. Open-air and room-temperature fabrication of graphene patterns on insulating substrates has been achieved via a femtosecond LDW process without graphene transfer and patterning. Various graphene patterns, including texts, spirals, line arrays and integrated circuit patterns, with a feature line width of 800 nm and a low sheet resistance of 205 ohm/sq, were fabricated. The LDW method provides a facile and cost-effective way to fabricate complex and high-quality graphene patterns directly on target substrates, which opens a door for fabricating various advanced functional devices.
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[1]  
Novoselov KS(2005)Two-dimensional gas of massless Dirac fermions in graphene Nature 438 197-200
[2]  
Novoselov KS(2007)Room-temperature quantum hall effect in graphene Science 315 1379-1379
[3]  
Novoselov KS(2004)Electric field effect in atomically thin carbon films Science 306 666-669
[4]  
Lee C(2008)Measurement of the elastic properties and intrinsic strength of monolayer graphene Science 321 385-388
[5]  
Wei XD(2010)Two-Dimensional Phonon Transport in Supported Graphene Science 328 213-216
[6]  
Kysar JW(2011)Transformation Optics Using Graphene Science 332 1291-1294
[7]  
Hone J(2008)Fine structure constant defines visual transparency of graphene Science 320 1308-1308
[8]  
Seol JH(2007)The rise of graphene Nature Materials 6 183-191
[9]  
Vakil A(2010)Roll-to-roll production of 30-inch graphene films for transparent electrodes Nat Nanotechnol 5 574-578
[10]  
Engheta N(2010)Graphene-On-Silicon Schottky Junction Solar Cells Advanced Materials 22 2743-+