首页> 外文期刊>The Journal of Organic Chemistry >Switching Off the Charge Transfer and Closing the S_1-T_1 ISC Channel in Excited States of Quinolizinium Derivatives: A Theoretical Study
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Switching Off the Charge Transfer and Closing the S_1-T_1 ISC Channel in Excited States of Quinolizinium Derivatives: A Theoretical Study

机译:在喹啉衍生物的激发态中关闭电荷转移并关闭S_1-T_1 ISC通道的理论研究

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Excited states of benzo[b]quinolizinium (BQ) derivatives that show efficient pH-responsive fluorescence switching properties were studied quantum-chemically by employing the CASSCF/CASPT2 and TD-DFT methods. Protonation of aminophenyl- BQ at the electron-donor amine moiety converts the nitrogen lone pair into a σ bond and the HOMO into a lowerlying orbital that is no longer involved in the excitation, thereby rationalizing the suppression of the charge transfer. An S_1-T_1 seam between the vertically excited Franck-Condon (FC) point and the S1 equilibrium geometry favors intersystem crossing (ISC). The T_1 state of the protonated form remains well below S_1 (1.5 eV) because of favorable exchange interactions, whereas the T_1 state of the unprotonated form does not experience any analogous stabilization because of the difference in the spatial domains of the singly occupied orbitals in the S1 and T_1 states. The S_1 surface from the FC point until the equilibrium geometry for the protonated species is energetically downhill. Calculations on models and available experimental data suggest design principles for similarly functioning pH-responsive species, namely, an amine lone pair as the electron donor and a cationic ring of moderate size as the electron acceptor that are structurally separated by virtue of a spacer.
机译:通过使用CASSCF / CASPT2和TD-DFT方法,对量子态化学研究了显示有效的pH响应荧光转换特性的苯并[b]喹啉鎓(BQ)衍生物的激发态。电子给体胺部分的氨基苯基BQ质子化将氮孤对转化为σ键,HOMO转化为不再参与激发的低轨道,从而合理地抑制了电荷转移。垂直激发的弗兰克-康登(FC)点和S1平衡几何形状之间的S_1-T_1接缝有利于系统间交叉(ISC)。由于有利的交换相互作用,质子化形式的T_1状态保持在远低于S_1(1.5 eV)的水平,而无质子化形式的T_1状态没有经历任何类似的稳定化,因为在空间中单个占据的轨道的空间域不同。 S1和T_1状态。从FC点到质子化物质的平衡几何形状的S_1表面在能量上处于下坡状态。对模型的计算和可用的实验数据表明,具有类似功能的pH响应物质的设计原理,即通过电子隔离子在结构上分开的胺孤对作为电子供体,中等大小的阳离子环作为电子受体。

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