Mechanical Degradation Analysis of an Amorphous Silicon Solar Module

Author:

Osayemwenre GilbertORCID,Meyer EdsonORCID

Abstract

This work examines the degradation of photovoltaic modules. It assesses the structural defects of amorphous silicon solar cells, which result from mechanical stress at nanoscale level. Firstly, it analyses the interface morphology, deformation, and internal delamination of a single junction amorphous silicon solar module. Secondly, it explores the interface deformation of the layers of the defective region of the module with some statistical tools including root mean root (RSM) and arithmetic mean (Rq). It used the aforementioned tools to demonstrate the effect of microstructural defects on the mechanical behaviour of the entire layers of the module. The study established that the defect observed in the module, emanated from long-term degradation of the a-Si solar cells after years of exposure to various light and temperature conditions. It tested the mechanism of mechanical degradation and its effect on the reliability and stability of the defective and non-defective regions of the module with adhesion force characterisation.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous)

Reference24 articles.

1. Towards a Zero-Emission, Efficient, and Resilient Buildings and Construction Sector,2017

2. IEA World Energy Outlook 2019https://www.iea.org/reports/world-energy-outlook-2019

3. Material challenges for solar cells in the twenty-first century: directions in emerging technologies

4. Re-assessment of net energy production and greenhouse gas emissions avoidance after 40 years of photovoltaics development

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