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首页> 外文期刊>Journal of physical chemistry letters >Electronic State-Resolved Electron Phonon Coupling in an Organic Charge Transfer Material from Broadband Quantum Beat Spectroscopy
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Electronic State-Resolved Electron Phonon Coupling in an Organic Charge Transfer Material from Broadband Quantum Beat Spectroscopy

机译:宽带量子拍谱技术在有机电荷转移材料中的电子态分辨电子声子耦合

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The coupling of electron and lattice phonon motion plays a fundamental role in the properties of functional organic charge-transfer materials. In this Letter we extend the use of ultrafast vibrational quantum beat spectroscopy to directly elucidate electron phonon coupling in an organic charge-transfer material. As a case study, we compare the oscillatory components of the transient reflection (TR) of a broadband probe pulse from single crystals of quinhydrone, a 1:1 cocrystal of hydroquinone and p-benzoquinone, after exciting nonresonant impulsive stimulated Raman scattering and resonant electronic transitions using ultrafast pulses. Spontaneous resonance Raman spectra confirm the assignment of these oscillations as coherent lattice phonon excitations. Fourier transforms of the vibrational quantum beats in our broadband TR measurements allow construction of spectra that we show report the ability of these phonons to directly modulate the electronic structure of quinhydrone. These results demonstrate how coherent ultrafast processes can characterize the complex interplay of charge transfer and lattice motion in materials of fundamental relevance to chemistry, materials sciences, and condensed matter physics.
机译:电子和晶格声子运动的耦合在功能性有机电荷转移材料的性能中起着基本作用。在这封信中,我们扩展了超快振动量子拍谱的使用,以直接阐明有机电荷转移材料中的电子声子耦合。作为案例研究,我们比较了在激发非共振脉冲受激拉曼散射和共振电子后,对苯二酚,对苯二酚和对苯醌的1:1共晶体的对苯二酚单晶的宽带探测脉冲的瞬态反射(TR)的振荡分量使用超快脉冲进行跃迁。自发共振拉曼光谱证实了这些振荡的分配是相干晶格声子激发。宽带TR测量中振动量子拍的傅立叶变换使我们能够构建光谱,我们证明了这些声子能够直接调节喹hydr酮的电子结构。这些结果表明,相干超快过程如何表征与化学,材料科学和凝聚态物理基本相关的材料中电荷转移和晶格运动的复杂相互作用。

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