中文版 | English
Title

Machine Learning-Accelerated Development of Perovskite Optoelectronics Toward Efficient Energy Harvesting and Conversion

Author
Corresponding AuthorChen, Rui; Huang, Bolong
Publication Years
2023-08-30
DOI
Source Title
ISSN
2699-9412
Abstract
For next-generation optoelectronic devices with efficient energy harvesting and conversion, designing advanced perovskite materials with exceptional optoelectrical properties is highly critical. However, the conventional trial-and-error approaches usually lead to long research periods, high costs, and low efficiency, which hinder the efficient development of optoelectronic devices for broad applications. The machine learning (ML) technique emerges as a powerful tool for materials designs, which supplies promising solutions to break the current bottlenecks in the developments of perovskite optoelectronics. Herein, the fundamental workflow of ML to interpret the working mechanisms step by step from a general perspective is first demonstrated. Then, the significant contributions of ML in designs and explorations of perovskite optoelectronics regarding novel materials discovery, the underlying mechanisms interpretation, and large-scale information process strategy are illustrated. Based on current research progress, the potential of ML techniques in cross-disciplinary directions to achieve the boost of material designs and optimizations toward perovskite materials is pointed out. In the end, the current advances of ML in perovskite optoelectronics are summarized and the future development directions are shown. This perspective supplies important insights into the developments of perovskite materials for the next generation of efficient and stable optoelectronic devices.
Keywords
URL[Source Record]
Indexed By
Language
English
SUSTech Authorship
Corresponding
Funding Project
The authors gratefully acknowledge support from the National Key Ramp;amp;D Program of China (2021YFA1501101), National Natural Science Foundation of China/Research Grant Council of Hong Kong Joint Research Scheme (N_PolyU502/21), National Natural Science[N_PolyU502/21] ; National Key Ramp;amp;D Program of China[CRS_PolyU504_22] ; National Natural Science Foundation of China/Research Grant Council of Hong Kong Joint Research Scheme[JCYJ20220531090807017] ; Hong Kong Polytechnic University[2023A1515012219] ; null[2021YFA1501101]
WOS Research Area
Science & Technology - Other Topics ; Energy & Fuels ; Materials Science
WOS Subject
Green & Sustainable Science & Technology ; Energy & Fuels ; Materials Science, Multidisciplinary
WOS Accession No
WOS:001058251700001
Publisher
Data Source
Web of Science
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/559368
DepartmentDepartment of Electrical and Electronic Engineering
Affiliation
1.Hong Kong Polytech Univ, Dept Appl Biol & Chem Technol, Hung Hom, Hong Kong 999077, Peoples R China
2.Southern Univ Sci & Technol, Dept Elect & Elect Engn, Shenzhen 518055, Peoples R China
3.Hong Kong Polytech Univ, Res Ctr Carbon Strateg Catalysis, Hung Hom, Kowloon, Hong Kong 999077, Peoples R China
First Author AffilicationDepartment of Electrical and Electronic Engineering
Corresponding Author AffilicationDepartment of Electrical and Electronic Engineering
Recommended Citation
GB/T 7714
Chen, Baian,Chen, Rui,Huang, Bolong. Machine Learning-Accelerated Development of Perovskite Optoelectronics Toward Efficient Energy Harvesting and Conversion[J]. ADVANCED ENERGY AND SUSTAINABILITY RESEARCH,2023.
APA
Chen, Baian,Chen, Rui,&Huang, Bolong.(2023).Machine Learning-Accelerated Development of Perovskite Optoelectronics Toward Efficient Energy Harvesting and Conversion.ADVANCED ENERGY AND SUSTAINABILITY RESEARCH.
MLA
Chen, Baian,et al."Machine Learning-Accelerated Development of Perovskite Optoelectronics Toward Efficient Energy Harvesting and Conversion".ADVANCED ENERGY AND SUSTAINABILITY RESEARCH (2023).
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