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Updated: Jan 8, 2026

Developing Photosensitizer-Cobaloxime Hybrids for Solar-Driven H2 Production in Aqueous Aerobic Conditions
Published on: October 5, 2019
Data-driven approach to elucidate the correlation between photocatalytic activity and rate constants from excited
Ryuga Kunisada1, Manami Hayashi1, Tabea Rohlfs2
1Graduate School of Science, Nagoya University Nagoya Aichi 464-8602 Japan yanai.takeshi.e4@f.mail.nagoya-u.ac.jp saito.susumu.c4@f.mail.nagoya-u.ac.jp.
Abstract:
Even though excited-state properties play a crucial role in photocatalysis, directly correlating these with photocatalytic activity remains challenging. Herein, we propose a method to elucidate the correlations between the catalytic activity of organic photosensitizers and the rate constants of various excited-state processes through integrating machine learning (ML), quantum chemical calculations, and chemical experiments. This approach was applied to interpolative predictions of the yield of the nickel/photocatalytic formation of C-O bonds and radical additions to alkenes using various organic photosensitizers with satisfactory accuracy (R 2 = 0.83 and 0.77 on the test set, respectively). The calculated rate constants obtained through quantum chemical calculations proved to be comparable or even superior to the experimentally measured excited-state lifetimes as descriptors. SHAP-based visual analysis revealed that the rate constants corresponding to transitions from the T1 state provide significant contributions to the interpolative prediction of photocatalytic activity. Additionally, the non-radiative decay process between the S1 and S0 states helps describe the low catalytic activity of poorly emissive photosensitizers. These findings highlight the potential of the proposed method to provide insights into photocatalytic properties that are difficult to obtain using conventional approaches.
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