TY - JOUR
T1 - Toward 21% Efficiency nPERT Solar Cells with Selective Back Surface Field Technique
AU - Peng, Zih Wei
AU - Hsieh, Po Tsung
AU - Huang, Chih Jeng
AU - Lin, Yuan Jun
AU - Chang, Ping Kuan
AU - Kuo, Chun
AU - Li, Chi Chun
N1 - Publisher Copyright:
© 2016 The Authors.
Copyright:
Copyright 2017 Elsevier B.V., All rights reserved.
PY - 2016/8/1
Y1 - 2016/8/1
N2 - We have demonstrated 20.83% large-area conversion efficiency with selective Back Surface Field(s-BSF) on the n-type Passivated Emitter, Rear Totally (nPERT) cell structure. Industrial 156 mm (6" inch) n-type Czochralski mono-crystalline silicon wafers were used as substrates. In this kind of cell, we employed a single-side texture on the boron emitter side. We use AlOX and SiNX dielectric stack as ARC and passivation. The unique point is on the cell's rear side, we use the phosphorous ion implantation to form the Back Surface Field (BSF). Due to the flexible on the implant process, we can choose different implant mask pattern to form the heavy doping region to achieve the selective Back Surface Field(s-BSF) structure. Finally we use the industrial screen printing technique to form the metal contact. The front (boron) side is printed with Ag/Al paste and the rear (phosphorous) side is with two printing steps; at the first step, we use high solid content and firing-through silver paste to form the contact on the heavy doping region, and second, we use the low solid content and non-firing through silver paste to connect all the metal contact formed on the first step. Finally, we use the fast firing furnace to co-fire the sample. The champion batch shows average values of 650mV open circuit voltage and 40.1 A/mm2 short circuit current density and 79.7% on the fill factor, and 20.71% efficiency.
AB - We have demonstrated 20.83% large-area conversion efficiency with selective Back Surface Field(s-BSF) on the n-type Passivated Emitter, Rear Totally (nPERT) cell structure. Industrial 156 mm (6" inch) n-type Czochralski mono-crystalline silicon wafers were used as substrates. In this kind of cell, we employed a single-side texture on the boron emitter side. We use AlOX and SiNX dielectric stack as ARC and passivation. The unique point is on the cell's rear side, we use the phosphorous ion implantation to form the Back Surface Field (BSF). Due to the flexible on the implant process, we can choose different implant mask pattern to form the heavy doping region to achieve the selective Back Surface Field(s-BSF) structure. Finally we use the industrial screen printing technique to form the metal contact. The front (boron) side is printed with Ag/Al paste and the rear (phosphorous) side is with two printing steps; at the first step, we use high solid content and firing-through silver paste to form the contact on the heavy doping region, and second, we use the low solid content and non-firing through silver paste to connect all the metal contact formed on the first step. Finally, we use the fast firing furnace to co-fire the sample. The champion batch shows average values of 650mV open circuit voltage and 40.1 A/mm2 short circuit current density and 79.7% on the fill factor, and 20.71% efficiency.
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U2 - 10.1016/j.egypro.2016.07.047
DO - 10.1016/j.egypro.2016.07.047
M3 - Conference article
AN - SCOPUS:85014463008
SN - 1876-6102
VL - 92
SP - 702
EP - 707
JO - Energy Procedia
JF - Energy Procedia
T2 - 6th International Conference on Crystalline Silicon Photovoltaics, SiliconPV 2016
Y2 - 7 March 2016 through 9 March 2016
ER -