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首页> 外文期刊>Computational & theoretical chemistry >Unveiling the photophysics of thiourea from CASPT2/CASSCF potential energy surfaces and singlet/triplet excited state molecular dynamics simulations
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Unveiling the photophysics of thiourea from CASPT2/CASSCF potential energy surfaces and singlet/triplet excited state molecular dynamics simulations

机译:从Caspt2 / Casscf潜在能量表面和单模/三联兴奋状态分子动力学模拟中揭示硫脲的光药

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This work describes the decay mechanism of photoexcited thiourea, both in gas phase and in solution, from the information inferred from the topography of the excited and ground state potential energy surfaces and mixed singlet/triplet quantum classical molecular dynamics simulations. Our gas phase results reveal Ti/So intersystem crossing as the dominant (49%) intrinsic decay channel to the ground state, which reaches a population of 0.28 at the final time of our simulations (10 ps). Population of the T-1, would occur after internal conversion to the S-1 from the spectroscopic S-2 electronic state, followed by S-1 -> T-2 intersystem crossing and T-2 -> T-1 internal conversion processes. Minor decay channels occurring exclusively along the singlet manifold, i.e. S-2 -> S-0 (33%) and S-1 -> S-0 (18%), were also observed to play a role in the relaxation of photoexcited thiourea in the gas phase. The explicit incorporation of water-thiourea interactions in our simulations was found to provoke a very significant delay in the decay to the ground state of the system, with no transitions to the So being registered during the first 10 ps of our simulations. Intermolecular vibrational energy redistribution and explicit hydrogen bond interactions established between water molecules and the NH2 group of thiourea were found to structurally or energetically hamper the access to the intersystem crossing or internal conversion funnels with the S-0.
机译:这项工作描述了来自兴奋和地态电位能量表面和混合单态/三重态量子经典分子动力学模拟的信息推断的信息中的光屏蔽硫脲的衰减机制。我们的气相结果揭示了Ti / So Intersystem交叉作为地面状态的主题(49%)内在衰减渠道,在我们的模拟的最后一次(10 ps)的最后一次达到0.28的人口。 T-1的群体将发生在从光谱S-2电子状态下转换为S-1后发生的,然后是S-1 - > T-2间隔交叉和T-2 - > T-1内部转换过程。还观察到仅沿单向歧管,即S-2 - > S-0(33%)和S-1 - > S-0(18%)出现的次要衰减通道在放松的光屏蔽硫脲的放松中发挥作用在气相中。发现我们模拟中的水 - 硫脲互动的明确掺入,从而探讨了系统的衰变的非常显着的延迟,在我们模拟的前10个PS期间没有过渡。在结构上或大力地妨碍与S-0结构或能量上建立的水分子和NH 2组硫脲之间建立的分子振动能量再分分配和显式氢键相互作用。

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