二维红外光谱解决振动景观的供体-桥-受体配合物与位置特异性同位素标记。

IF 3.7 Q2 CHEMISTRY, PHYSICAL ACS Physical Chemistry Au Pub Date : 2024-10-29 eCollection Date: 2024-11-27 DOI:10.1021/acsphyschemau.4c00073
James D Shipp, Ricardo J Fernández-Terán, Alexander J Auty, Heather Carson, Andrew J Sadler, Michael Towrie, Igor V Sazanovich, Paul M Donaldson, Anthony J H M Meijer, Julia A Weinstein
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引用次数: 0

摘要

给体-桥-受体配合物(D-B-A)是理解光诱导过程的重要模型系统。在这里,我们应用双色二维红外(2D-IR)光谱对具有trans-Pt(II)乙酰基桥的D-B-A配合物(D-C≡C-Pt-C≡C-A)揭示了振动能量再分配(IVR)的机制。桥的选择性13C同位素标记用于解耦位于pt中心两侧的乙酰基模式。d -乙酰基-从a -乙酰基-解耦,使振动能量转移(VET)速率,动态不谐性和光谱扩散的特定位点的研究。令人惊讶的是,不对称标记的D-B-A仍然经历分子内乙酰基之间的IVR,即使它们是解耦的,并且位于通常被视为“振动瓶颈”的重原子上。此外,人口从桥梁转移到接受者的速度既取决于地点,也取决于距离。结果表明,在亚皮秒的时间尺度上,乙酰基模式的振动激发转移到配体中心模式,然后在几皮秒的时间尺度上转移到溶剂模式。我们还表明,同位素取代不影响光谱扩散速率,这表明振动动力学的变化不是乙酰基周围局部环境差异的结果。在振动激发的受体局域羰基模式的衰减上刻印的振荡表明,它们在激发后进入相干叠加态,衰减超过1-2 ps,因此在2D-IR光谱中不能视为独立的。这些发现阐明了红外介导电子转移的振动景观,并说明了同位素标记与多维红外光谱相结合在复杂系统中解开振动能量传播途径的力量。
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Two-Dimensional Infrared Spectroscopy Resolves the Vibrational Landscape in Donor-Bridge-Acceptor Complexes with Site-Specific Isotopic Labeling.

Donor-bridge-acceptor complexes (D-B-A) are important model systems for understanding of light-induced processes. Here, we apply two-color two-dimensional infrared (2D-IR) spectroscopy to D-B-A complexes with a trans-Pt(II) acetylide bridge (D-C≡C-Pt-C≡C-A) to uncover the mechanism of vibrational energy redistribution (IVR). Site-selective 13C isotopic labeling of the bridge is used to decouple the acetylide modes positioned on either side of the Pt-center. Decoupling of the D-acetylide- from the A-acetylide- enables site-specific investigation of vibrational energy transfer (VET) rates, dynamic anharmonicities, and spectral diffusion. Surprisingly, the asymmetrically labeled D-B-A still undergoes intramolecular IVR between acetylide groups even though they are decoupled and positioned across a heavy atom usually perceived as a "vibrational bottleneck". Further, the rate of population transfer from the bridge to the acceptor was both site-specific and distance dependent. We show that vibrational excitation of the acetylide modes is transferred to ligand-centered modes on a subpicosecond time scale, followed by VET to solvent modes on the time scale of a few picoseconds. We also show that isotopic substitution does not affect the rate of spectral diffusion, indicating that changes in the vibrational dynamics are not a result of differences in local environment around the acetylides. Oscillations imprinted on the decay of the vibrationally excited acceptor-localized carbonyl modes show they enter a coherent superposition of states after excitation that dephases over 1-2 ps, and thus cannot be treated as independent in the 2D-IR spectra. These findings elucidate the vibrational landscape governing IR-mediated electron transfer and illustrate the power of isotopic labeling combined with multidimensional IR spectroscopy to disentangle vibrational energy propagation pathways in complex systems.

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期刊介绍: ACS Physical Chemistry Au is an open access journal which publishes original fundamental and applied research on all aspects of physical chemistry. The journal publishes new and original experimental computational and theoretical research of interest to physical chemists biophysical chemists chemical physicists physicists material scientists and engineers. An essential criterion for acceptance is that the manuscript provides new physical insight or develops new tools and methods of general interest. Some major topical areas include:Molecules Clusters and Aerosols; Biophysics Biomaterials Liquids and Soft Matter; Energy Materials and Catalysis
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