Enhancing Reliability and Regeneration of Single Passivated Emitter Rear Contact Solar Cell Modules through Alternating Current Power Application to Mitigate Light and Elevated Temperature‐Induced Degradation

Author:

Jony Jaljalalul Abedin1,Yousuf Hasnain1,Zahid Muhammad Aleem2,Khokhar Muhammad Quddamah2,Madara Polgampola Chamani2,Rahman Rafi Ur2,Kim Youngkuk2,Aida Maha Nur3,Sanyal Simpy4,Park Sangheon5ORCID,Dhungel Suresh Kumar6ORCID,Yi Junsin123ORCID

Affiliation:

1. Interdisciplinary Program in Photovoltaic System Engineering Sungkyunkwan University Suwon Gyeonggi‐do 16419 Korea

2. Department of Electrical and Computer Engineering Sungkyunkwan University Suwon Gyeonggi‐do 16419 Korea

3. Department of Future Energy Engineering Sungkyunkwan University Suwon Gyeonggi‐do 16419 Korea

4. Adjunct Faculty Saveetha School of Engineering SIMATS University Chennai Tamilnadu 600124 India

5. Research Institute for Clean Energy College of Information and Communication Engineering Sungkyunkwan University Suwon Gyeonggi‐do 16419 Korea

6. Faculty of Technology Nepal Academy of Science and Technology Khumaltar Lalitpur 3323 Nepal

Abstract

The study explores a novel method to combat the Light and Elevated Temperature‐Induced Degradation (LeTID) in solar cell modules, which significantly reduces their efficiency and lifespan. This method involves applying alternating current (AC) of various waveforms (triangular, sinusoidal, and square) and frequencies (5 and 100 kHz) to boron‐doped p‐type passivated emitter rear contact (p‐PERC) solar cell modules. This approach effectively lowers the series resistance at the critical junction between the silver (Ag) contact and the silicon emitter layer of the PERC solar cell, thereby reducing charge recombination hindered by high resistance, especially at elevated temperatures. As a result, there is an improved flow of electrical charges, leading to decreased energy loss and increased solar cell efficiency. The study's findings indicate that a slow, smooth sinusoidal AC waveform at 100 kHz is particularly effective, restoring about 100% of the original performance of the panel. Moreover, oscillations at 5 kHz also show considerable efficacy, recovering more than 96% of the performance. The sinusoidal waveform is noted to surpass both triangular and square waveforms in recovery efficiency. This research highlights the use of high‐frequency AC electricity as a viable strategy to extend the lifespan and enhance the performance of solar panels.

Funder

Korea Institute of Energy Technology Evaluation and Planning

Korea Electric Power Corporation

Publisher

Wiley

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