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Zhi-Yuan He

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Aug 2026

Conical Intersection-Mediated Nonradiative Decay in an ESIPT-Active Imidazole Derivative.

Excited-state intramolecular proton transfer (ESIPT) is a photoinduced process that involves proton migration within an intramolecular hydrogen-bonded framework following electronic excitation and is often associated with large Stokes-shifted emission. However, the excited-state fate after proton transfer is not exclusively governed by radiative decay from a stabilized keto tautomer, and nonradiative relaxation may also play a decisive role. In this work, the excited-state relaxation mechanism of 2-(4,5-diphenyl-1H-imidazol-2-yl)phenol (DIP) was investigated using multireference electronic structure calculations combined with nonadiabatic dynamics simulations. SA-CASSCF/MS-CASPT2 calculations reveal the presence of a low-energy S1S0 conical intersection in the keto configuration that provides an efficient nonradiative decay channel. The ESIPT process proceeds through a modest proton-transfer barrier of 7.47 kcal·mol-1, after which the system is directed toward the conical intersection region on the excited-state potential energy surface. Surface-hopping dynamics simulations at the OM2/MRCI level further demonstrate that the relaxation process bifurcates into pathways yielding either enol or keto ground-state products. These results indicate that the excited-state dynamics are governed not only by proton transfer but also by strong nonadiabatic coupling associated with the conical intersection. This work reveals that the excited-state fate of ESIPT systems is strongly governed by conical intersection-mediated nonradiative decay following proton transfer.

Jia-Hui Wu, Chuan-Biao Zhang, Dan Wang et al. · 0 citations
Open access Sep 2026

Spatially programmed polymorphic crystallization via microenvironment design

Organic semiconductor crystals with long-range order and designable properties are pivotal in optoelectronic devices. Organic crystals bonded by weak intermolecular interactions usually follow non-classical crystallization trajectories, yielding polymorphs with distinctive properties but extremely difficult to control. We present a method for deterministic control of polymorphs, yielding organic microcrystal arrays with distinctive crystal structures and emission spectra. To elucidate the mechanisms of molecular self-assembly, we track the real-time dynamics of molecular nucleation, Ostwald’s ripening, and polymorph formation. Based on this method, we extended our regulation strategy to multiple molecules, achieving programmable polymorphic formation with broadly tunable emission spectra (450–705 nm) and anisotropic polarized emission. On a single substrate, we integrated multidimensional polymorphic information including position, wavelength, intensity, and polarization, constructing a high-density optical information storage platform with an information density of 215 bits/cm2, thereby opening potential technological pathways for future optical information storage technologies.

Zheng-Lian Qin, Yu-Chen Qiu, Jing-Yuan Zhang et al. · 0 citations

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