Enhancing the Overall Performance of Perovskite Solar Cells with a Nano-Pyramid Anti-Reflective Layer

Author:

Liu Li1,Liu Wenfeng2,Fu Wenfeng1,Yi Zao13ORCID,Yi Yougen2,Zhang Jianguo4ORCID,Tang Chaojun5,Sun Tangyou6ORCID,Zeng Qingdong7,Wu Pinghui8ORCID

Affiliation:

1. Joint Laboratory for Extreme Conditions Matter Properties, Key Laboratory of Manufacturing Process Testing Technology of Ministry of Education, State Key Laboratory of Environment-Friendly Energy Materials, Southwest University of Science and Technology, Mianyang 621010, China

2. School of Energy Science and Engineering, College of Physics, Central South University, Changsha 410083, China

3. School of Chemistry and Chemical Engineering, Jishou University, Jishou 416000, China

4. Department of Physics, Jinzhong University, Jinzhong 030619, China

5. College of Science, Zhejiang University of Technology, Hangzhou 310023, China

6. Guangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology, Guilin 541004, China

7. School of Physics and Electronic-information Engineering, Hubei Engineering University, Xiaogan 432000, China

8. Office of Science and Technology, Quanzhou Normal University, Quanzhou 362000, China

Abstract

Perovskite solar cells (PSCs) still suffer from varying degrees of optical and electrical losses. To enhance the light decoupling and capture ability of Planar PSCs, an ultra-thin PSC structure with an Al2O3 pyramid anti-reflection layer (Al2O3 PARL) is proposed. The effect of the structure of the Al2O3 PARL on the photoelectric performance of PSCs was investigated by changing various parameters. Under the AM1.5 solar spectrum (300–800 nm), the average light absorption rates and quantum efficiency (QE) of PSCs containing pyramid-array textured rear layers (PARLs) were significantly higher than those of planar PSCs. The Al2O3 PARL-based PSCs achieved a light absorption rate of 96.05%. Additionally, electrical simulations were performed using the finite element method (FEM) to calculate the short-circuit current density (JSC), open-circuit voltage (VOC), and maximum power (Pmax). Based on the maximum value of the average light absorbance, the geometric structure of the Al2O3 pyramid PSCs was optimized, and the optimization results coincided with the JSC and QE results. The results of the electrical simulation indicated that the maximum JSC was 23.54 mA/cm2. Additionally, the JSC of the Al2O3 pyramid PSCs was 22.73% higher than that of planar PSCs, resulting in a photoelectric conversion efficiency (PCE) of 24.34%. As a result, the photoelectric conversion rate of the solar cells increased from 14.01% to 17.19%. These findings suggest that the presence of the Al2O3 PARL enhanced photon absorption, leading to an increase in electron–hole pairs and ultimately improving the photocurrent of the solar cells.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Fujian Province

Guangxi Science and Technology Base and Talent Special Project

Sichuan Science and Technology Program

Open Fund of the Key Laboratory for Metallurgical Equipment and Control Technology of the Ministry of Education in Wuhan University of Science and Technology, China

Guangxi Key Laboratory of Precision Navigation Technology and Application, Guilin University of Electronic Technology

Doctoral Fund of Southwest University of Science and Technology

Postgraduate Innovation Fund Project of Southwest University of Science and Technology

Publisher

MDPI AG

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