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High open-circuit voltage of graphene-based photovoltaic cells modulated by layer-by-layer transfer SCIE SCOPUS

Title
High open-circuit voltage of graphene-based photovoltaic cells modulated by layer-by-layer transfer
Authors
Ihm, KLee, KJLim, JTKang, THChung, SHong, BHYeom, GY
Date Issued
2012-06
Publisher
WILEY-BLACKWELL
Abstract
Graphene has shown great application opportunities in future nanoelectronic devices because of its outstanding electronic properties. Moreover, its impressive optical properties have been attracting the interest of researchers, and, recently, the photovoltaic effects of a heterojunction structure embedded with few layer graphene (FLG) have been demonstrated. Here, we report the photovoltaic response of graphenesemiconductor junctions and the controlled open-circuit voltage (Voc) with varying numbers of graphene layers. After unavoidably adsorbed contaminants were removed from the FLGs by means of in situ annealing, prepared by layer-by-layer transfer of the chemically grown graphene layer, the work functions of FLGs showed a sequential increase as the graphene layers increase, despite random interlayer-stacking, resulting in the modulation of photovoltaic behaviors of FLGs/Si interfaces. The surface photovoltaic effects observed here show an electronic realignment in the depth direction in the FLG heterojunction systems, indicating future potential toward solar devices utilizing the excellent transparency and flexibility of FLG. Copyright (c) 2011 John Wiley & Sons, Ltd.
Keywords
Photovoltaic; Graphene; Photoelectron spectroscopy; SENSITIZED SOLAR-CELLS; PHOTOEMISSION; ELECTRODES; TRANSPARENT; FILMS; MICROSCOPY; DEVICES
URI
https://oasis.postech.ac.kr/handle/2014.oak/15894
DOI
10.1002/SIA.3860
ISSN
0142-2421
Article Type
Article
Citation
SURFACE AND INTERFACE ANALYSIS, vol. 44, no. 6, page. 744 - 748, 2012-06
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