Optimal performances of a-Si:H/c-Si heterojunction silicon solar cells based on a statistical approach

Author:

Trinh Thanh Thuy12ORCID,Nguyen Cam Phu Thi3ORCID,Nguyen Chi-Hieu4,Giang Ngo Thi Thanh5,Nguyen Phuong T. K.67ORCID,Yi Junsin8,Dao Vinh-Ai9ORCID

Affiliation:

1. Department of Physics, International University 1 , Block 6, Linh Trung Ward, Thu Duc City, Ho Chi Minh City 700000, Vietnam

2. Vietnam National University 2 , Ho Chi Minh City, Vietnam

3. School of Materials Science and Engineering, UNSW Sydney 3 , Sydney, NSW 2052, Australia

4. Power Engineering Consulting Company, Southern Power Corporation 4 , Ho Chi Minh City 700000, Vietnam

5. The Asian International School 5 , Ho Chi Minh City 700000, Vietnam

6. Institute of Fundamental and Applied Sciences, Duy Tan University 6 , Ho Chi Minh City 700000, Vietnam

7. Faculty of Natural Sciences, Duy Tan University 7 , Da Nang 550000, Vietnam

8. College of Information and Communication Engineering, Sungkyunkwan University 8 , Suwon 16419, Republic of Korea

9. Department of Physics, Faculty of Applied Sciences, HCMC University of Technology and Education 9 , Ho Chi Minh City 700000, Vietnam

Abstract

Finding the optimal condition from a wide range of cell fabrication conditions and design parameters is typically a time-consuming and cumbersome task. In this study, the combination of the Taguchi approach and Grey relational analysis was employed for optimization of the conversion efficiency of hydrogenated amorphous silicon/crystalline silicon heterojunction (a-Si:H/c-Si HJ) solar cells. With the help of the Taguchi method via an orthogonal array, the reconstruction of the impact of input parameters on single performance characteristics is still ensured while reducing the number of simulations by 99.8%. The simulated results suggested that the density of interfacial defects (Dit) plays a key role in obtaining a high open-circuit voltage (Voc) and fill factor (FF), respectively. Meanwhile, the emitter thickness is the dominant factor in achieving a high short-circuit current density (Jsc). As a result, these two factors dominate the conversion efficiency. Furthermore, the overall optimal condition is also obtained by the Grey relational analysis. The simplified HJ cell configuration using this optimal condition displayed the highest conversion efficiency of 25.86%, yielding a 2.25% absolute increase in efficiency compared to the initial condition. The results highlight the effectiveness of our proposed approach in reducing the number of experiments needed for cell optimization.

Publisher

AIP Publishing

Subject

Renewable Energy, Sustainability and the Environment

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