Title :
Effect of Surface Texture on Al–Y Codoped ZnO/n-Si Heterojunction Solar Cells
Author :
Na-Fu Wang ; Yu-Zen Tsai ; Feng-Hao Hsu
Author_Institution :
Dept. of Electron. Eng., Cheng Shiu Univ., Kaohsiung, Taiwan
Abstract :
This study fabricates Al-Y codoped ZnO (AZOY)/n-Si heterojunction (HJ) solar cells using direct current magnetron sputtering and investigates the effect of etching time (from 30 to 120 s) on photovoltaic cell properties. To explore the effects of etching time on the optoelectrical properties of AZOY thin films, the films are deposited on glass substrate and then measured using a field-emission scanning electron microscope, atomic force microscopy, Hall effect measurement, and an ultraviolet-visible spectrometer. The results show that the resistivity, surface root mean square roughness, plasma resonance wavelength (λp), and haze value of films increase with an increase in etching time. The highest conversion efficiency (η:8.10±0.11%) of a cell is achieved with postdeposition etching for 60 s because of the higher AZOY thin film λp and haze values. The higher short circuit current density (Jsc) and open circuit voltage (Voc) are proved again; low-cost and high-quality AZOY transparent conducting film is a good window layer for transparent conducting oxide/n-Si HJ solar cells.
Keywords :
Hall effect; II-VI semiconductors; atomic force microscopy; current density; electrical resistivity; electro-optical effects; elemental semiconductors; etching; field emission electron microscopy; p-n heterojunctions; scanning electron microscopy; semiconductor growth; semiconductor thin films; short-circuit currents; solar cells; sputter deposition; surface resistance; surface roughness; surface texture; transparency; ultraviolet spectra; visible spectra; wide band gap semiconductors; SiO2; ZnO-Si:Al,Y; heterojunction solar cells; surface texture effect; Etching; Photovoltaic cells; Rough surfaces; Surface morphology; Surface roughness; Zinc oxide; Direct current (dc) magnetron sputter; heterojunction (HJ) solar cell; surface texture; zinc oxide;
Journal_Title :
Electron Devices, IEEE Transactions on
DOI :
10.1109/TED.2013.2287060