Thiourea-Mediated Photoinduced Electron Transfer in Water

Abstract Thiourea (TU) is a versatile functional scaffold in catalysis, sensing, and medicinal chemistry, owing to its strong electron-donating character. However, the photophysical parameters governing the efficiency of TU derivatives in photoinduced electron transfer (PET) remain poorly understood. Here, we systematically investigated TU-mediated PET by introducing controlled alkyl substitution at the nitrogen centers while preserving the thiocarbonyl framework. Using Rhodamine 6G (Rh6G) as a model fluorophore, we combined quantum chemical calculations with steady-state and time-resolved spectroscopic techniques to elucidate structure-PET relationships. Progressive alkyl substitution leads to a significant enhancement in fluorescence quenching efficiency (67 to ∼90 %). While the free energy change (ΔG) exhibits minor deviation, the donor–acceptor energy gap (ΔE) decreases systematically, identifying ΔE as a key parameter governing PET efficiency in these systems. Time-resolved fluorescence and femtosecond transient absorption measurements reveal the emergence of intrinsic PET dynamics on the ∼220–360 ps time scale and confirm the formation of long-lived Rh6G radical species. Higher alkylated derivatives exhibit mixed static-dynamic quenching, driven by enhanced ground-state association. This behavior arises from a synergistic interplay of increased electron density and hydrophobic interactions, which collectively promote efficient PET. These findings establish a mechanistic framework for tuning electron transfer in thiocarbonyl systems and provide design principles for advanced fluorescent probes and sensing platforms.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-09
DOI
https://doi.org/10.1021/acs.jpclett.6c02379
Primary Topic
Photochemistry and Electron Transfer Studies
Type
article
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article

Thiourea-Mediated Photoinduced Electron Transfer in Water

Himansu S. Biswal, L. K. Dash, Rudhi Ranjan Sahoo, H. Ghosh et al.
The Journal of Physical Chemistry Letters
Photochemistry and Electron Transfer Studies
article

Thiourea-Mediated Photoinduced Electron Transfer in Water

Himansu S. Biswal, L. K. Dash, Rudhi Ranjan Sahoo, H. Ghosh, Subhrakant Jena, Ipsita Parichha, Madhusmita Parida
article en

Abstract

Abstract Thiourea (TU) is a versatile functional scaffold in catalysis, sensing, and medicinal chemistry, owing to its strong electron-donating character. However, the photophysical parameters governing the efficiency of TU derivatives in photoinduced electron transfer (PET) remain poorly understood. Here, we systematically investigated TU-mediated PET by introducing controlled alkyl substitution at the nitrogen centers while preserving the thiocarbonyl framework. Using Rhodamine 6G (Rh6G) as a model fluorophore, we combined quantum chemical calculations with steady-state and time-resolved spectroscopic techniques to elucidate structure-PET relationships. Progressive alkyl substitution leads to a significant enhancement in fluorescence quenching efficiency (67 to ∼90 %). While the free energy change (ΔG) exhibits minor deviation, the donor–acceptor energy gap (ΔE) decreases systematically, identifying ΔE as a key parameter governing PET efficiency in these systems. Time-resolved fluorescence and femtosecond transient absorption measurements reveal the emergence of intrinsic PET dynamics on the ∼220–360 ps time scale and confirm the formation of long-lived Rh6G radical species. Higher alkylated derivatives exhibit mixed static-dynamic quenching, driven by enhanced ground-state association. This behavior arises from a synergistic interplay of increased electron density and hydrophobic interactions, which collectively promote efficient PET. These findings establish a mechanistic framework for tuning electron transfer in thiocarbonyl systems and provide design principles for advanced fluorescent probes and sensing platforms.

The Journal of Physical Chemistry Letters
National Institute of Science Education and Research (IN), Homi Bhabha National Institute (IN)
Clean water and sanitation
Openalex Percentile: Top 12%
Photochemistry and Electron Transfer Studies
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