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Energy Transport of Hybrid Charge-Transfer Excitons

机译:混合电荷转移激子的能量传输

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We investigate the energy transport in an organic–inorganic hybrid platform formed between semiconductors that support stable room-temperature excitons. We find that following photoexcitation, fast-moving hot hybrid charge-transfer excitons (HCTEs) are formed in about 36 ps via scattering with optical phonons at the interface between j-aggregates of organic dye and inorganic monolayer MoS_(2). Once the energy falls below the optical phonon energy, the excess kinetic energy is relaxed slowly via acoustic phonon scattering, resulting in energy transport that is dominated by fast-moving hot HCTEs that transition into cold HCTEs in about 110 ps. We model the exciton–phonon interactions using Fr?hlich and deformation potential theory and attribute the prolonged transport of hot HCTEs to phonon bottleneck. We find that the measured diffusivity of HCTEs in both hot and cold regions of transport was higher than the diffusivity of MoS_(2)A exciton and verify these results by conducting the experiments with different excitation energies. This work not only provides significant insight into the initial energy transport of HCTEs at organic–inorganic hybrid interfaces but also contributes to the formulation of a complete physical picture of the energy dynamics in hybrid materials, which are poised to advance applications in energy conversion and optoelectronic devices.
机译:我们研究了在支持稳定的室温激子的半导体之间形成的有机无机混合平台中的能量运输。我们发现,在运动染料和无机单层MOS_(2)之间的界面之间,通过散射,在约36ps 上形成快速移动的热混合电荷转移激子(Hctes)。一旦能量低于光学声子能量,通过声学声子散射缓慢缓慢动能,通过声学声子散射缓慢缓慢,导致通过快速移动的热Hctes在约110ps中转变为冷Hctes的能量传输。我们使用FRαHLICH和变形潜在理论模拟激子 - 声子相互作用,并将热荷兰特的长时间运输归因于声子瓶颈。我们发现,在热和寒冷的交通区域中测量的Hctes的扩散性高于MOS_(2)的扩散率,并通过进行不同励磁能量的实验来验证这些结果。这项工作不仅可以对有机 - 无机混合界面的初始能量传输提供了重要的洞察,而且还有助于制定混合材料中的能量动力学的完整物理图像,这是预先推进能量转换和光电中的应用设备。

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