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Ultrafast photo-induced charge transfer unveiled by two-dimensional electronic spectroscopy

机译:二维电子光谱学揭示超快光致电荷转移

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The interaction of exciton and charge transfer (CT) states plays a central role in photo-induced CT processes in chemistry, biology, and physics. In this work, we use a combination of two-dimensional electronic spectroscopy (2D-ES), pump-probe measurements, and quantum chemistry to investigate the ultrafast CT dynamics in a lutetium bisphthalocyanine dimer in different oxidation states. It is found that in the anionic form, the combination of strong CT-exciton interaction and electronic asymmetry induced by a counter-ion enables CT between the two macrocycles of the complex on a 30 fs timescale. Following optical excitation, a chain of electron and hole transfer steps gives rise to characteristic cross-peak dynamics in the electronic 2D spectra, and we monitor how the excited state charge density ultimately localizes on the macrocycle closest to the counter-ion within 100 fs. A comparison with the dynamics in the radical species further elucidates how CT states modulate the electronic structure and tune fs-reaction dynamics. Our experiments demonstrate the unique capability of 2D-ES in combination with other methods to decipher ultrafast CT dynamics.
机译:激子与电荷转移(CT)态的相互作用在化学,生物学和物理学中的光诱导CT过程中起着核心作用。在这项工作中,我们结合使用二维电子光谱(2D-ES),泵浦探针测量和量子化学,研究了oxidation双酞菁二聚体在不同氧化态下的超快CT动力学。发现以阴离子形式,强CT-激子相互作用和抗衡离子诱导的电子不对称性的结合使络合物的两个大环之间在30 fs的时间尺度上实现CT。在光激发之后,一连串的电子和空穴转移步骤在电子2D光谱中产生了特征性的峰间动力学,并且我们监测激发态电荷密度最终如何在100 fs内最终位于最接近抗衡离子的大环上。与自由基种类的动力学进行比较,进一步阐明了CT状态如何调节电子结构并调节fs反应动力学。我们的实验证明了2D-ES结合其他方法破译超快CT动力学的独特能力。

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