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Leveraging excited-state coherence for synthetic control of ultrafast dynamics

机译:利用兴奋状态相干性对超快动态的合成控制

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Design-specific control over excited-state dynamics is necessary for any application seeking to convert light into chemical potential. Such control is especially desirable in iron(ii)-based chromophores, which are an Earth-abundant option for a wide range of photo-induced electron-transfer applications including solar energy conversion(1)and catalysis(2). However, the sub-200-femtosecond lifetimes of the redox-active metal-to-ligand charge transfer (MLCT) excited states typically encountered in these compounds have largely precluded their widespread use(3). Here we show that the MLCT lifetime of an iron(ii) complex can be manipulated using information from excited-state quantum coherences as a guide to implementing synthetic modifications that can disrupt the reaction coordinate associated with MLCT decay. We developed a structurally tunable molecular platform in which vibronic coherences-that is, coherences reflecting a coupling of vibrational and electronic degrees of freedom-were observed in ultrafast time-resolved absorption measurements after MLCT excitation of the molecule. Following visualization of the vibrational modes associated with these coherences, we synthetically modified an iron(ii) chromophore to interfere with these specific atomic motions. The redesigned compound exhibits a MLCT lifetime that is more than a factor of 20 longer than that of the parent compound, indicating that the structural modification at least partially decoupled these degrees of freedom from the population dynamics associated with the electronic-state evolution of the system. These results demonstrate that using excited-state coherence data may be used to tailor ultrafast excited-state dynamics through targeted synthetic design.Information from quantum coherence observations guides synthetic modifications of an iron-based chromophore, increasing the excited-state dynamics lifetime by a factor of 20, with implications for photo-induced electron-transfer applications.
机译:任何寻求将光线转换为化学潜力的任何应用程序都需要对兴奋状态动态的设计特定控制。在基于铁(II)的发色团中特别理想的这种控制,其是各种光诱导的电子转移应用的地面优化,包括太阳能转化(1)和催化(2)。然而,在这些化合物中通常遇到的氧化还原活性金属 - 配体电荷转移(MLCT)激发态的亚200 - 飞秒寿命主要是在很大程度上排除了它们的广泛使用(3)。在这里,我们表明铁(II)复合物的MLCT寿命可以使用来自激励状态的量子相合的信息作为实施合成修饰的指导来操纵,这可能破坏与MLCT衰减相关的反应坐标。我们开发了一种结构上可调谐的分子平台,其中振动相干性 - 即反映在分子的MLCT激发后的超快时间分辨的吸收测量中观察到反映振动和电子自由度的耦合的一致性。在与这些相干相关的振动模式的可视化之后,我们综合改性铁(II)发色团以干扰这些特定的原子运动。重新设计的化合物表现出MLCT寿命,其比母体化合物的MLCT寿命长度超过20倍,表明结构修改至少部分地与与系统的电子状态演化相关的人口动态分离出这些自由度。这些结果表明,使用励磁状态相干数据可用于通过目标合成设计量身定制超快激发状态动态。从量子相干观察的信息引导炼铁的发色团的合成修饰,增加了兴奋状态动态的寿命20,具有对光诱导的电子转移应用的影响。

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  • 来源
    《Nature》 |2020年第7811期|214-218|共5页
  • 作者单位

    Michigan State Univ Dept Chem E Lansing MI 48824 USA;

    Michigan State Univ Dept Chem E Lansing MI 48824 USA;

    Michigan State Univ Dept Chem E Lansing MI 48824 USA;

    Michigan State Univ Dept Chem E Lansing MI 48824 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:15:23

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