DocumentCode :
1859223
Title :
Broadband absorption enhancement using front pre-patterned substrate for thin film amorphous silicon solar cell
Author :
Han, Hao-Wei ; Tsai, Min-An ; Tseng, Ping-Chen ; Tsai, Yu-Lin ; Jin, Liang-Hao ; Chen, Hsin-Chu ; Wang, Hsun-Wen ; Lin, Chien-Chung ; Yu, Peichen ; Kuo, Hao-Chung
Author_Institution :
Inst. of Photonic Syst., Nat. Chiao Tung Univ., Tainan, Taiwan
fYear :
2011
fDate :
19-24 June 2011
Abstract :
Light trapping in amorphous silicon thin film solar cells has been an intensive study owing to the low absorption coefficient in near-infrared. We demonstrate a frontal pre-patterned substrate (PPS) on amorphous silicon solar cells, utilizing scalable colloidal lithography, to serve both functions of anti-reflection and light trapping effect. We show that a solar cell with front pre-patterned substrate exhibits broadband enhanced external quantum efficiency due to both anti-reflection and light-trapping, with respect to an industrial standard cell using an Asahi U glass substrate which is mostly optimized for light trapping. The power conversion efficiency of the pre-patterned cell is measured 8.38%, which shows 56.34% and 8.83% enhancement compared to the reference cell with a flat substrate and the commercialized Asahi U-type substrate, respectively. Moreover, the angle-resolved absorption spectroscopy shows superior optical coupling to the absorber layer at large angles of incidence (AOIs), which guarantees sufficient light harvesting for the entire day. We also present a design optimization of frontal pre-patterned substrate with broadband antireflective subwavelength structures based on the theoretical calculation using a rigorous coupled wave analysis (RCWA) method. We can find the optimization size of PPS is 500nm bottom width and 450nm height from the simulation enhancement mapping figure.
Keywords :
absorption coefficients; amorphous semiconductors; plasma CVD; semiconductor thin films; silicon; solar cells; substrates; Asahi U glass substrate; absorber layer; absorption coefficient; angle-resolved absorption spectroscopy; broadband absorption enhancement; broadband antireflective subwavelength structures; colloidal lithography; external quantum efficiency; front pre-patterned substrate; light harvesting; light trapping; optical coupling; power conversion efficiency; rigorous coupled wave analysis; size 450 nm; size 500 nm; thin film amorphous silicon solar cell; Absorption; Charge carrier processes; Etching; Photonics; Photovoltaic cells; Silicon; Substrates;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Photovoltaic Specialists Conference (PVSC), 2011 37th IEEE
Conference_Location :
Seattle, WA
ISSN :
0160-8371
Print_ISBN :
978-1-4244-9966-3
Type :
conf
DOI :
10.1109/PVSC.2011.6186089
Filename :
6186089
Link To Document :
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