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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Modulating absorption and charge transfer in bodipy-carbazole donor-acceptor dyads through molecular design
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Modulating absorption and charge transfer in bodipy-carbazole donor-acceptor dyads through molecular design

机译:通过分子设计调节Bodipy-carbazole供体 - 受体二元的吸收和电荷转移

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摘要

Three bodipy-based (BDP = 4,4-difluoro-4-bora-3a,4a-diaza-s-indacene) donor-acceptor dyads were designed and synthesized, and their ground-state and photophysical properties were systematically characterized. The electronic coupling between the BDP chromophore and an electron-donating carbazole (Carb) moiety was tuned by attachment via the meso and the beta positions on the BDP core, and through the use of various chemical linkers (phenyl and alkynyl) to afford mesoBDP-Carb, mesoBDP-phen-Carb, and betaBDP-alk-Carb. meso-Substituted dyads were found to retain ground-state absorption features of the unsubstituted BDP. However, variation of the linkage between the donor and acceptor moieties modulated the photophysical behavior of excited-state deactivation by controlling the rate of photoinduced internal charge transfer (ICT). The beta-substituted dyad dramatically tuned (red shifted) the absorption spectrum, while retaining desired features of the BDP, specifically stability and high extinction coefficients, however the ICT kinetics were accelerated compared to the meso-substituted dyads. Density functional theory (DFT) and time-dependent DFT (TDDFT) were carried out on the six potential dyads formed between BDP and Carb (attachment using the beta and meso positions for all three connections: direct, phenyl and alkynyl) to support the experimental observations. DFT and TDDFT showed molecular orbital density spread across the HOMO level only when attachment occurred through the beta position of BDP. In the meso-substituted BDP-Carb dyads, the molecular orbitals resembled those of the unsubstituted BDP. This work reveals several possible synthetic paradigms to tune photophysical properties with directed synthetic modifications and provides a mechanistic understanding of the ground- and excited- state behavior in these small-molecule donor-acceptor dyads.
机译:设计和合成了三种基于BODIPY的(BDP = 4,4-二氟-4-BORA-3A,4A-DIAZA-S-INDACIACE)供体 - 受体二元,系统地表征了它们的地态和光学性质。通过通过MESO和BDP核心上的β位置连接,通过使用各种化学接头(苯基和炔基)来调谐BDP发色团和电子提供的咔唑(碳咔唑)部分之间的电子耦合,并通过使用各种化学接头(苯基和炔基)来提供MESOBDP- CARB,MESOBDP-PHEN-CARB和BETABDP-ALK-CARB。发现中替代的二元以保留未取代的BDP的地态吸收特征。然而,供体和受体部分之间的连杆的变化通过控制光诱导的内部电荷转移(ICT)的速率来调节激发态失活的光学性行为。 β取代的二元显着调谐(红色移位)吸收光谱,同时保留BDP的所需特征,特别是稳定性和高消光系数,然而与中间取代的二元相比加速了ICT动力学。密度函数理论(DFT)和时间依赖性DFT(TDDFT)在BDP和CARB(使用β和所有三个连接的β和MESO位置的附着)之间进行的六种潜在的DFT(TDDFT)进行:直接,苯基和炔基)以支持实验性的观察。仅当通过BDP的β位置发生连接时,DFT和TDDFT显示分子轨道密度跨越同源水平的分散。在中草替代的BDP-CARB二元,分子轨道类似于未取代的BDP。这项工作揭示了几种可能的合成范式,以调整具有指向合成修饰的光物理性质,并在这些小分子供体 - 受体二元组中提供了对地面和激发态行为的机械理解。

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