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Predicting Power Conversion Efficiency of Organic Photovoltaics: Models and Data Analysis
Author(s) -
Andreas Eibeck,
Daniel Nurkowski,
Angiras Me,
Jiaru Bai,
Jinkui Wu,
Li Zhou,
Sebastian Mosbach,
Jethro Akroyd,
Markus Kraft
Publication year - 2021
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.1c02156
Subject(s) - computer science , random forest , artificial intelligence , artificial neural network , photovoltaic system , support vector machine , machine learning , baseline (sea) , test set , mean squared error , organic solar cell , photovoltaics , predictive power , regression , computational model , predictive modelling , data mining , mathematics , statistics , engineering , philosophy , oceanography , epistemology , geology , electrical engineering
In this paper, the ability of three selected machine learning neural and baseline models in predicting the power conversion efficiency (PCE) of organic photovoltaics (OPVs) using molecular structure information as an input is assessed. The bidirectional long short-term memory (gFSI/BiLSTM), attentive fingerprints (attentive FP), and simple graph neural networks (simple GNN) as well as baseline support vector regression (SVR), random forests (RF), and high-dimensional model representation (HDMR) methods are trained to both the large and computational Harvard clean energy project database (CEPDB) and the much smaller experimental Harvard organic photovoltaic 15 dataset (HOPV15). It was found that the neural-based models generally performed better on the computational dataset with the attentive FP model reaching a state-of-the-art performance with the test set mean squared error of 0.071. The experimental dataset proved much harder to fit, with all of the models exhibiting a rather poor performance. Contrary to the computational dataset, the baseline models were found to perform better than the neural models. To improve the ability of machine learning models to predict PCEs for OPVs, either better computational results that correlate well with experiments or more experimental data at well-controlled conditions are likely required.

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