Improvement in the performance of CIGS solar cells by introducing GaN nanowires on the absorber layer

2019 ◽  
Vol 779 ◽  
pp. 643-647 ◽  
Author(s):  
Jae-Kwan Sim ◽  
Dae-Young Um ◽  
Jong-Woong Kim ◽  
Jin-Soo Kim ◽  
Kwang-Un Jeong ◽  
...  
Solar Energy ◽  
2011 ◽  
Vol 85 (11) ◽  
pp. 2666-2678 ◽  
Author(s):  
Viswanathan S. Saji ◽  
Ik-Ho Choi ◽  
Chi-Woo Lee

2019 ◽  
Vol 9 (6) ◽  
pp. 1839-1845 ◽  
Author(s):  
Tim Kodalle ◽  
Tobias Bertram ◽  
Rutger Schlatmann ◽  
Christian A. Kaufmann

2013 ◽  
Vol 448-453 ◽  
pp. 1497-1501 ◽  
Author(s):  
Hanif Ullah ◽  
Bernabé Marí ◽  
Hai Ning Cui

This work reports on the analysis of thin-film copperindiumgalliumdiselenide (CIGS) solar cells by using Solar Cell Capacitance Simulator software (SCAPS). We have modeled a PV device, which consists in a CIGS absorber, a CdS buffer and a ZnO window layer. We have studied the behavior of CIGS absorber as a function of Gallium content by simulating the behavior of CIGS solar cells versus the Ga content in the absorber layer.


2020 ◽  
Vol 11 ◽  
pp. 10
Author(s):  
Gizem Birant ◽  
Jorge Mafalda ◽  
Romain Scaffidi ◽  
Jessica de Wild ◽  
Dilara Gokcen Buldu ◽  
...  

In this work, hafnium oxide layer is investigated as rear surface passivation layer for ultra-thin (550 nm) CIGS solar cells. Point contact openings in the passivation layer are realized by spin-coating potassium fluoride prior to absorber layer growth. Contacts are formed during absorber layer growth and visualized with scanning electron microscopy (SEM). To assess the passivating qualities, HfOx was applied in a metal-insulator-semiconductor (MIS) structure, and it demonstrates a low interface trap density in combination with a negative density of charges. Since we used ultra-thin devices that are ideal to probe improvements at the rear, solar cell results indicated improvements in all cell parameters by the addition of 2 nm thick HfOx passivation layer with contact openings.


2013 ◽  
Vol 1538 ◽  
pp. 61-66 ◽  
Author(s):  
Yukiko Kamikawa ◽  
Hironori Komaki ◽  
Shigenori Furue ◽  
Akimasa Yamada ◽  
Shogo Ishizuka ◽  
...  

ABSTRACTCIGS solar cells were fabricated on a hybrid back contact comprised of a TCO layer (ZnO:Ga (GZO)) and Mo layers. It was discovered that an additional Mo layer introduced underneath the TCO layer promotes sodium diffusion through the TCO back contact into the upper CIGS absorber layer. Improvement in VOC and JSC values relative to those of sodium-free solar cells was achieved with the Mo/GZO/Mo hybrid back contact as a result of the enhanced sodium diffusion.


2021 ◽  
Vol 13 (4) ◽  
pp. 04018-1-04018-5
Author(s):  
Amina Maria Laoufi ◽  
◽  
B. Dennai ◽  
O. Kadi ◽  
M. Fillali ◽  
...  

2021 ◽  
Vol 223 ◽  
pp. 110948
Author(s):  
Alban Lafuente-Sampietro ◽  
Katsuhisa Yoshida ◽  
Shenghao Wang ◽  
Shogo Ishizuka ◽  
Hajime Shibata ◽  
...  

Sensors ◽  
2021 ◽  
Vol 21 (14) ◽  
pp. 4849
Author(s):  
Chan Hyeon Park ◽  
Jun Yong Kim ◽  
Shi-Joon Sung ◽  
Dae-Hwan Kim ◽  
Yun Seon Do

In this paper, we propose an optimized structure of thin Cu(In,Ga)Se2 (CIGS) solar cells with a grating aluminum oxide (Al2O3) passivation layer (GAPL) providing nano-sized contact openings in order to improve power conversion efficiency using optoelectrical simulations. Al2O3 is used as a rear surface passivation material to reduce carrier recombination and improve reflectivity at a rear surface for high efficiency in thin CIGS solar cells. To realize high efficiency for thin CIGS solar cells, the optimized structure was designed by manipulating two structural factors: the contact opening width (COW) and the pitch of the GAPL. Compared with an unpassivated thin CIGS solar cell, the efficiency was improved up to 20.38% when the pitch of the GAPL was 7.5–12.5 μm. Furthermore, the efficiency was improved as the COW of the GAPL was decreased. The maximum efficiency value occurred when the COW was 100 nm because of the effective carrier recombination inhibition and high reflectivity of the Al2O3 insulator passivation with local contacts. These results indicate that the designed structure has optimized structural points for high-efficiency thin CIGS solar cells. Therefore, the photovoltaic (PV) generator and sensor designers can achieve the higher performance of photosensitive thin CIGS solar cells by considering these results.


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