Beyond Common Energy Transfer: Intramolecular Electron Transfer Cascade Controls Triplet Population of a Long-Lived Iron-Anthracene Molecular Dyad

IF 10.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Felix Glaser*, , , Giovanni M. Beneventi, , , Alejandro Cadranel*, , and , Ludovic Troian-Gautier*, 
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引用次数: 0

Abstract

An iron-anthracene dyad was recently used to populate a microsecond-lived nonluminescent (dark) triplet state, but with a surprisingly low triplet population yield. In-depth spectroscopic experiments highlight that direct energy transfer does not take place, but rather an intramolecular electron-transfer occurs, generating the corresponding reduced iron center and oxidized anthracene moiety, and the final triplet dark state is populated following charge recombination. This electron-transfer cascade reaction mechanism provided the unique opportunity to control the energy level of the charge-separated state relative to the energy of the triplet state by changing the solvent polarity. As such, the triplet formation yield increased from 5% in acetonitrile to 75% in dichloromethane. This outlines an unreported mechanistic pathway for first-row transition metal complexes to populate long-lived excited states and provides design guidelines that differ between d5 and prototypical d6 photosensitizers. The d5 electronic configuration enables population of the final triplet energy acceptor via a cascade of electron transfer that does not formally require intersystem crossing or spin-flip transitions, thus also minimizing energy loss channels. Although the energy of the final triplet state is important, our findings highlight that the redox potentials of the excited photosensitizer and final energy acceptor moiety are pivotal to efficiently populate dark triplet states.

The mechanism describing the population of an anthracene-localized triplet dark state within an iron-anthracene dyad was shown to occur via a cascade of electron transfer, not energy transfer.

超越普通能量转移:分子内电子转移级联控制长寿命铁-蒽分子二偶体的三重态居群
铁-蒽二偶体最近被用于填充微秒寿命的非发光(暗)三重态,但具有令人惊讶的低三重态种群产量。深入的光谱实验表明,没有发生直接的能量转移,而是发生了分子内的电子转移,产生了相应的还原铁中心和氧化蒽部分,并在电荷重组后填充了最终的三重态暗态。这种电子转移级联反应机制为通过改变溶剂极性来控制电荷分离态相对于三重态能量的能级提供了独特的机会。因此,三联体的生成率从乙腈中的5%提高到二氯甲烷中的75%。这概述了第一行过渡金属配合物填充长寿命激发态的未报道的机制途径,并提供了d5和原型d6光敏剂之间不同的设计指南。d5电子结构使最终三重态能量受体通过电子转移级联填充,该级联不需要系统间交叉或自旋翻转跃迁,从而也使能量损失通道最小化。虽然最终三重态的能量很重要,但我们的研究结果强调,激发光敏剂和最终能量受体部分的氧化还原电位是有效填充暗三重态的关键。描述铁-蒽二偶体中蒽定域三重态暗态居群的机制被证明是通过电子转移级联发生的,而不是能量转移。
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来源期刊
ACS Central Science
ACS Central Science Chemical Engineering-General Chemical Engineering
CiteScore
25.50
自引率
0.50%
发文量
194
审稿时长
10 weeks
期刊介绍: ACS Central Science publishes significant primary reports on research in chemistry and allied fields where chemical approaches are pivotal. As the first fully open-access journal by the American Chemical Society, it covers compelling and important contributions to the broad chemistry and scientific community. "Central science," a term popularized nearly 40 years ago, emphasizes chemistry's central role in connecting physical and life sciences, and fundamental sciences with applied disciplines like medicine and engineering. The journal focuses on exceptional quality articles, addressing advances in fundamental chemistry and interdisciplinary research.
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