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March 15, 2026Journal of the American Chemical Society1 citationsOpen Access

Beyond-Kasha Photochemistry in a Heteroleptic Platinum–Dithiolene Complex

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MGMichela GazzettoFAFlavia ArtizzuSASalahuddin Attar

Key Points

  • This research aims to explore the photochemical behavior of a platinum dithiolene complex beyond Kasha's rule.
  • Investigated the behavior of the anionic heteroleptic dithiolene complex [Pt((R)-α-MBAdto)(quinoxdt)]- in acetonitrile
  • Analyzed excited-state processes and conformational changes upon excitation of higher energy states
  • Studied HCl detachment and spectral shifts in the presence of ion-pair adducts.
  • Identified long-lived conformational changes in the complex upon higher excited state excitation.
  • Observed HCl detachment within 70 ps and significant changes in the S1-S0 gap.
  • Demonstrated the complex undergoes non-Kasha isomerization, indicating 'beyond-Kasha' photochemical behavior.

Abstract

Kasha's rule implies that photochemical reactions occur in the lowest excited state, regardless of excitation wavelength. Only a few chromophores have been reported to exhibit efficient non-Kasha responses. While these are rare, their exploitation could revolutionize multiresponsive materials, improve solar energy utilization, and advance light-driven chemical reactions. Studying non-Kasha dynamics enhances the understanding of excited-state processes and could broaden the range of usable chromophores in real applications. This article focuses on the anionic heteroleptic dithiolene complex Pt((R)-α-MBAdto)(quinoxdt)- ((R)-α-MBAdto = (R)-(+)α-methylbenzyl-dithiooxamidate; quinoxdt = 1,4dithiino2,3-bquinoxaline-2,3-bis(thiolate)) in acetonitrile, which undergoes long-lived conformational changes exclusively upon excitation of higher excited states. In its tight ion-pair adduct with HCl, these changes drive HCl detachment within 70 ps, trigger a dramatic blue-shift in the S1-S0 gap, and lead to aggregate formation. Although these processes ultimately occur in the lowest excited state, they rely on non-Kasha isomerization, representing a "beyond-Kasha" process. Such systems pave the way for innovative multiresponsive materials and non-Kasha excitation-dependent photochemical applications.

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Cite This Study

Gazzetto et al. (2026) studied this question.

synapsesocial.com/papers/69b606ea83145bc643d1d777https://doi.org/10.1021/jacs.6c00565
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