Design and numerical analysis of CIGS-based solar cell with V2O5 as the BSF layer to enhance photovoltaic performance

Author:

Rahman Md. Ferdous12ORCID,Mahmud Nayeem1,Alam Intekhab3ORCID,Ali Md. Hasan1,Moon M. M. A.1ORCID,Kuddus Abdul4ORCID,Toki G. F. Ishraque5ORCID,Rubel M. H. K.6ORCID,Al Asad Md. Abdullah7ORCID,Hossain M. Khalid8ORCID

Affiliation:

1. Advanced Energy Materials and Solar Cell Research Laboratory 1 , Department of Electrical and Electronic Engineering, Begum Rokeya University, Rangpur 5400, Bangladesh

2. Solar Energy Laboratory, Electrical and Electronic Engineering, University of Rajshahi 2 , Rajshahi 6205, Bangladesh

3. Department of Mechanical and Manufacturing Engineering, University of Calgary 3 , Calgary, Alberta T2N 1N4, Canada

4. Ritsumeikan Global Innovation Research Organization, Ritsumeikan University 4 , Shiga 525-0058, Japan

5. College of Materials Science and Engineering, Donghua University 5 , Shanghai 201620, China

6. Department of Materials Science and Engineering, University of Rajshahi 6 , Rajshahi 6205, Bangladesh

7. Department of EEE, Bangabandhu Sheikh Mujibur Rahman Science and Technology University 7 , Gopalganj 8100, Bangladesh

8. Institute of Electronics, Atomic Energy Research Establishment, Bangladesh Atomic Energy Commission 8 , Dhaka 1349, Bangladesh

Abstract

Copper indium gallium selenide (CIGS)-based solar cells have exhibited greater performance than the ones utilizing cadmium telluride (CdTe) or hydrogenated amorphous silicon (a-Si: H) as the absorber. CIGS-based devices are more efficient, considering their device performance, environmentally benign nature, and reduced cost. In this article, we proposed a potential CIGS-absorber-based solar cell with an FTO/ZnSe/CIGS/V2O5/Cu heterostructure, with a V2O5 back-surface field (BSF) layer, SnO2:F (FTO) window layer, and ZnSe buffer layer. Using the solar cell capacitance simulator one-dimensional simulation software, the effects of the presence of the BSF layer, the thickness, bulk defect density, and acceptor density of the absorber layer, buffer layer thickness, interfacial defect density, device resistance, and operating temperature on the open-circuit voltage, short-circuit current, fill factor, and efficiency, as well as on the quantum efficiency and recombination and generation rate, of the device have been explored in detail. The simulation results revealed that only a 1 μm-thick-CIGS absorber layer with V2O5 BSF and ZnSe buffer layers in this structure offers an outstanding efficiency of 31.86% with a VOC of ∼0.9 V. Thus, these outcomes of the CIGS-based proposed heterostructure provide an insightful pathway for fabricating high-efficiency solar cells with performance more promising than the previously reported conventional designs.

Funder

Ministry of Science and Technology, Government of the People’s Republic of Bangladesh

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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