Zengguang Huang
Shanghai Jiao Tong University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Zengguang Huang.
Advanced Materials | 2015
Sihua Zhong; Zengguang Huang; Xingxing Lin; Yang Zeng; Yechi Ma; W. Z. Shen
Nanostructured silicon solar cells show great potential for new-generation photovoltaics due to their ability to approach ideal light-trapping. However, the nanofeatured morphology that brings about the optical benefits also introduces new recombination channels, and severe deterioration in the electrical performance even outweighs the gain in optics in most attempts. This Research News article aims to review the recent progress in the suppression of carrier recombination in silicon nanostructures, with the emphasis on the optimization of surface morphology and controllable nanostructure height and emitter doping concentration, as well as application of dielectric passivation coatings, providing design rules to realize high-efficiency nanostructured silicon solar cells on a large scale.
Scientific Reports | 2015
Sihua Zhong; Yang Zeng; Zengguang Huang; W. Z. Shen
Establishing reliable and efficient antireflection structures is of crucial importance for realizing high-performance optoelectronic devices such as solar cells. In this study, we provide a design guideline for buried Mie resonator arrays, which is composed of silicon nanostructures atop a silicon substrate and buried by a dielectric film, to attain a superior antireflection effect over a broadband spectral range by gaining entirely new discoveries of their antireflection behaviors. We find that the buried Mie resonator arrays mainly play a role as a transparent antireflection structure and their antireflection effect is insensitive to the nanostructure height when higher than 150 nm, which are of prominent significance for photovoltaic applications in the reduction of photoexcited carrier recombination. We further optimally combine the buried Mie resonator arrays with micron-scale textures to maximize the utilization of photons, and thus have successfully achieved an independently certified efficiency of 18.47% for the nanostructured silicon solar cells on a large-size wafer (156 mm × 156 mm).
Optical Nanostructures and Advanced Materials for Photovoltaics | 2015
Zengguang Huang; Sihua Zhong; W. Z. Shen
By employing the simple, low-cost and compatibility-process metal-assisted chemical etching (MACE) technique, we prepare the large-size Si nano/microstructures (N/M-Strus) and investigate the photovoltaic applications.
Nanotechnology | 2013
Xingxing Lin; Xiaolin Hua; Zengguang Huang; W. Z. Shen
Solar Energy Materials and Solar Cells | 2016
Yufeng Zhuang; Sihua Zhong; Zengguang Huang; W. Z. Shen
Nanotechnology | 2015
Xingxing Lin; Yang Zeng; Sihua Zhong; Zengguang Huang; H Q Qian; J B Zhu; W. Z. Shen
Progress in Photovoltaics | 2015
Zengguang Huang; Sihua Zhong; Xia Hua; Xingxing Lin; Xiangyang Kong; Ning Dai; W. Z. Shen
Advanced Functional Materials | 2016
Sihua Zhong; Wenjie Wang; Yufeng Zhuang; Zengguang Huang; W. Z. Shen
Solar Energy Materials and Solar Cells | 2015
Zengguang Huang; Xingxing Lin; Yang Zeng; Sihua Zhong; X.M. Song; C. Liu; X. Yuan; W. Z. Shen
Advanced Functional Materials | 2016
Zengguang Huang; Xiaomin Song; Sihua Zhong; Haiyuan Xu; Wenxing Luo; Xudong Zhu; W. Z. Shen