Abstract
CuGaSe2 (CGSe), CuInSe2 (CISe), and Cu (In,Ga)Se2 (CIGSe) are highly attractive chalcopyrite materials due to their exceptional optoelectronic properties, which make them a suitable candidate for solar cells application. However, highest power conversion efficiency (PCE) reported for these photo absorber materials is close to 20%, which is far below the theoretical limit. It is possible to approach the theoretical limit by incorporating nanostructures into the cell, which initiates the sub-bandgap (Eg) absorption by forming an intermediate band (IB). In this study, CISe nanostructures are incorporated within the CGSe host material to form a CGSe/CISe quantum wells (QWs). This method utilizes the host semiconductor's wider Eg to maintain the open-circuit voltage (Voc) values that are comparable to those reported for CGSe solar cells. The study examines the effects of QWs thickness, QWs number, and Ga/(Ga+In) compositional ratio on the characteristics of solar cells. Results indicate that incorporating 50 QWs with thicknesses ranging from 20 to 150 nm and Ga/(Ga+In) compositional ratios of about 0.2 and 0.8, respectively, can enhance PCE, further highlighting the importance and positivity of nanostructures. In addition, improvements in short-circuit current density, Voc, and overall PCE are also observed than the optimized device without nanostructures. The study proposes a promising approach to improve the photo absorption, carrier separation and thereby over all solar cell performance based on Chalcopyrite heterostructure QWs.
| Original language | English |
|---|---|
| Article number | 113260 |
| Journal | Materials Research Bulletin |
| Volume | 184 |
| DOIs | |
| State | Published - Apr 2025 |
Keywords
- CIGSe solar cells
- Chalcopyrite
- Nanostructures
- Quantum wells
- Radiative limit
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