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Journal article : Review

Revolutionizing low-cost solar cells with machine learning: a systematic review of optimization techniques

Abstract:
Machine learning (ML) and artificial intelligence (AI) methods are emerging as promising technologies for enhancing the performance of low-cost photovoltaic (PV) cells in miniaturized electronic devices. Indeed, ML is set to significantly contribute to the development of more efficient and cost-effective solar cells. This systematic review offers an extensive analysis of recent ML techniques in designing novel solar cell materials and structures, highlighting their potential to transform the low-cost solar cell research and development landscape. The review encompasses a variety of ML approaches, such as Gaussian process regression (GPR), Bayesian optimization (BO), and deep neural networks (DNNs), which have proven effective in boosting the efficiency, stability, and affordability of solar cells. The findings of this review indicate that GPR combined with BO is the most promising method for developing low-cost solar cells. These techniques can significantly speed up the discovery of new PV materials and structures while enhancing the efficiency and stability of low-cost solar cells. The review concludes with insights on the challenges, prospects, and future directions of ML in low-cost solar cell research and development.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1002/aesr.202300004

Authors

More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Materials
Role:
Author
ORCID:
0000-0002-5395-5850


Publisher:
Wiley
Journal:
Advanced Energy & Sustainability Research More from this journal
Volume:
4
Issue:
10
Article number:
2300004
Publication date:
2023-08-23
Acceptance date:
2023-03-31
DOI:
EISSN:
2699-9412
ISSN:
2699-9412


Language:
English
Keywords:
Subtype:
Review
Pubs id:
1518470
Local pid:
pubs:1518470
Deposit date:
2023-10-12
ARK identifier:

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