How backreflection contributes to light absorption for high-performance radial junction photovoltaics

Author:

Zhang Shaobo1ORCID,Wang Shuyi2,Hu Ruijin1ORCID,Cao Yunqing1ORCID,Wang Junzhuan2ORCID,Xu Jun2ORCID,Yu Linwei2ORCID

Affiliation:

1. College of Physical Science and Technology/Microelectronics Industry Research Institute, Yangzhou University 1 , 225002 Yangzhou, People's Republic of China

2. School of Electronics Science and Engineering/National Laboratory of Solid State Microstructures/Collaborative Innovation Center of Advanced Microstructures, Nanjing University 2 , 210023 Nanjing, People's Republic of China

Abstract

A robust radial junction (RJ) structure directly constructed upon the surface of a flexible Al foil substrate shows a promising potential to boost wearable and portable applications, where the silicon nanowire (SiNW) supported multilayer has proven beneficial in excellent mechanical stability and sufficient light harvesting. Assigned to the beneficial backreflection contributed by the Al foil, a much larger light current can be achieved than that on glass. While a comprehensive understanding of the light absorption under the backreflection of the substrate remains mainly unexplored. Herein, a straightforward comparison of light absorption of RJ units on Al and glass substrates, within a theoretical framework based on a finite-element simulation, is performed. Then, taking SiNW geometric parameters and i-layer thickness into account, the evolutions of light harvesting and the external quantum efficiency curves are systematically studied. These results indicate that, under the backreflection of the substrate, the light absorption shows a reduced dependency on SiNW geometry and i-layer thickness to some extent, laying a critical basis to establish a simpler/easier fabrication process for high-performance flexible RJ thin film photovoltaics.

Funder

National Key Research Program of China

National Natural Science Foundation of China for Distinguished Young Scholars No.

National Natural Science Foundation of China

Special Fund for City School Cooperation of Yangzhou City

Innovation technology platform project jointly built by Yangzhou City and Yangzhou University

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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