| Literature DB >> 27052357 |
Yinyue Lin1,2, Zhen Xu2,3, Dongliang Yu2, Linfeng Lu2, Min Yin2, Mohammad Mahdi Tavakoli4, Xiaoyuan Chen2, Yuying Hao1, Zhiyong Fan4, Yanxia Cui1, Dongdong Li2.
Abstract
Three-dimensional (3-D) structures have triggered tremendous interest for thin-film solar cells since they can dramatically reduce the material usage and incident light reflection. However, the high aspect ratio feature of some 3-D structures leads to deterioration of internal electric field and carrier collection capability, which reduces device power conversion efficiency (PCE). Here, we report high performance flexible thin-film amorphous silicon solar cells with a unique and effective light trapping scheme. In this device structure, a polymer nanopillar membrane is attached on top of a device, which benefits broadband and omnidirectional performances, and a 3-D nanostructure with shallow dent arrays underneath serves as a back reflector on flexible titanium (Ti) foil resulting in an increased optical path length by exciting hybrid optical modes. The efficient light management results in 42.7% and 41.7% remarkable improvements of short-circuit current density and overall efficiency, respectively. Meanwhile, an excellent flexibility has been achieved as PCE remains 97.6% of the initial efficiency even after 10 000 bending cycles. This unique device structure can also be duplicated for other flexible photovoltaic devices based on different active materials such as CdTe, Cu(In,Ga)Se2 (CIGS), organohalide lead perovskites, and so forth.Entities:
Keywords: broadband and omnidirectional performances; flexible; nanopillar membrane; shallow dent arrays; thin-film solar cells
Year: 2016 PMID: 27052357 DOI: 10.1021/acsami.6b02194
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229