Highly Stretchable and Sensitive Photodetectors Based on Hybrid Graphene and Graphene Quantum Dots

被引:75
作者
Chiang, Chia-Wei [1 ]
Haider, Golam [1 ]
Tan, Wei-Chun [1 ]
Liou, Yi-Rou [1 ]
Lai, Ying-Chih [1 ]
Ravindranath, Rini [2 ]
Chang, Huan-Tsung [2 ]
Chen, Yang-Fang [1 ]
机构
[1] Natl Taiwan Univ, Dept Phys, Taipei 106, Taiwan
[2] Natl Taiwan Univ, Dept Chem, Taipei 106, Taiwan
关键词
graphene; graphene quantum dots; photodetector; stretchable device; nanocomposites; HIGH-PERFORMANCE; LARGE-AREA; FILMS; TRANSPARENT; MEMORY; SKIN;
D O I
10.1021/acsami.5b09373
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Stretchable devices possess great potential in a wide range of applications, such as biomedical and wearable gadgets and smart skin, which can be integrated with the human body. Because of their excellent flexibility, two-dimensional (2D) materials are expected to play an important role in the fabrication of stretchable devices. However, only a limited number of reports have been devoted to investigating stretchable devices based on 2D materials, and the stretch-abilities were restricted in a very small strain. Moreover, there is no report related to the stretchable photodetectors derived from 2D materials. Herein, we demonstrate a highly stretchable and sensitive photodetector based on hybrid graphene and graphene quantum dots (GQDs). A unique rippled structure of poly(dimethylsiloxane) is used to support the graphene layer, which can be stretched under an external strain far beyond published reports. The ripple of the device can overcome the native stretchability limit of graphene and enhance the carrier generation in GQDs due to multiple reflections of photons between the ripples. Our strategy presented here can be extended to many other material systems, including other 2D materials. It therefore paves a key step for the development of stretchable electronics and optical devices.
引用
收藏
页码:466 / 471
页数:6
相关论文
共 32 条
[1]   All Carbon-Based Photodetectors: An eminent integration of graphite quantum dots and two dimensional graphene [J].
Cheng, Shih-Hao ;
Weng, Tong-Min ;
Lu, Meng-Lin ;
Tan, Wei-Chun ;
Chen, Ju-Ying ;
Chen, Yang-Fang .
SCIENTIFIC REPORTS, 2013, 3
[2]   Raman spectrum of graphene and graphene layers [J].
Ferrari, A. C. ;
Meyer, J. C. ;
Scardaci, V. ;
Casiraghi, C. ;
Lazzeri, M. ;
Mauri, F. ;
Piscanec, S. ;
Jiang, D. ;
Novoselov, K. S. ;
Roth, S. ;
Geim, A. K. .
PHYSICAL REVIEW LETTERS, 2006, 97 (18)
[3]   The rise of graphene [J].
Geim, A. K. ;
Novoselov, K. S. .
NATURE MATERIALS, 2007, 6 (03) :183-191
[4]  
Haider G., 2015, ADV FUNCT MATER, P1
[5]   25th Anniversary Article: The Evolution of Electronic Skin (E-Skin): A Brief History, Design Considerations, and Recent Progress [J].
Hammock, Mallory L. ;
Chortos, Alex ;
Tee, Benjamin C-K ;
Tok, Jeffrey B-H ;
Bao, Zhenan .
ADVANCED MATERIALS, 2013, 25 (42) :5997-6037
[6]   Electromechanical properties of CNT-coated cotton yarn for electronic textile applications [J].
Kang, Tae June ;
Choi, Ajeong ;
Kim, Dai-Hong ;
Jin, Kyoungcheol ;
Seo, Dong Kyun ;
Jeong, Dae Hong ;
Hong, Seong-Hyeon ;
Park, Yung Woo ;
Kim, Yong Hyup .
SMART MATERIALS AND STRUCTURES, 2011, 20 (01)
[7]   Electron scattering on microscopic corrugations in graphene [J].
Katsnelson, M. I. ;
Geim, A. K. .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2008, 366 (1863) :195-204
[8]   High performance stretchable UV sensor arrays of SnO2 nanowires [J].
Kim, Daeil ;
Shin, Gunchul ;
Yoon, Jangyeol ;
Jang, Dongseok ;
Lee, Seung-Jung ;
Zi, Goangseup ;
Ha, Jeong Sook .
NANOTECHNOLOGY, 2013, 24 (31)
[9]  
Konstantatos G, 2012, NAT NANOTECHNOL, V7, P363, DOI [10.1038/nnano.2012.60, 10.1038/NNANO.2012.60]
[10]   A flexible and wearable glucose sensor based on functional polymers with Soft-MEMS techniques [J].
Kudo, Hiroyuki ;
Sawada, Takanori ;
Kazawa, Elito ;
Yoshida, Hiromichi ;
Iwasaki, Yasuhiko ;
Mitsubayashi, Kohji .
BIOSENSORS & BIOELECTRONICS, 2006, 22 (04) :558-562