| Literature DB >> 26308388 |
Tianpeng Jiao1,2, Jian Liu1,3, Dapeng Wei1, Yanhui Feng2, Xuefen Song1, Haofei Shi1, Shuming Jia1, Wentao Sun3, Chunlei Du1.
Abstract
The conventional graphene-silicon Schottky junction solar cell inevitably involves the graphene growth and transfer process, which results in complicated technology, loss of quality of the graphene, extra cost, and environmental unfriendliness. Moreover, the conventional transfer method is not well suited to conformationally coat graphene on a three-dimensional (3D) silicon surface. Thus, worse interfacial conditions are inevitable. In this work, we directly grow graphene nanowalls (GNWs) onto the micropyramidal silicon (MP) by the plasma-enhanced chemical vapor deposition method. By controlling growth time, the cell exhibits optimal pristine photovoltaic performance of 3.8%. Furthermore, we improve the conductivity of the GNW electrode by introducing the silver nanowire (AgNW) network, which could achieve lower sheet resistance. An efficiency of 6.6% has been obtained for the AgNWs-GNWs-MP solar cell without any chemical doping. Meanwhile, the cell exhibits excellent stability exposed to air. Our studies show a promising way to develop simple-technology, low-cost, high-efficiency, and stable Schottky junction solar cells.Entities:
Keywords: composite electrode; graphene nanowalls; high efficiency; one-step growth; silver nanowires; solar cells; stability; three-dimensional Si
Year: 2015 PMID: 26308388 DOI: 10.1021/acsami.5b05565
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229