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Energy transfer pathways in semiconducting carbon nanotubes revealed using two-dimensional white-light spectroscopy

机译:半导体碳纳米管中的能量转移途径使用二维白光光谱显示

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Thin film networks of highly purified semiconducting carbon nanotubes (CNTs) are being explored for energy harvesting and optoelectronic devices because of their exceptional transport and optical properties. The nanotubes in these films are in close contact, which permits energy to flow through the films, although the pathways and mechanisms for energy transfer are largely unknown. Here we use a broadband continuum to collect femtosecond two-dimensional white-light spectra. The continuum spans 500 to 1,300 nm, resolving energy transfer between all combinations of bandgap (S-1) and higher (S-2) transitions. We observe ultrafast energy redistribution on the S-2 states, non-Forster energy transfer on the S-1 states and anti-correlated energy levels. The two-dimensional spectra reveal competing pathways for energy transfer, with S-2 excitons taking routes depending on the bandgap separation, whereas S-1 excitons relax independent of the bandgap. These observations provide a basis for understanding and ultimately controlling the photophysics of energy flow in CNT-based devices.
机译:由于其出色的传输和光学性能,正在探索用于能量收集和光电器件的高度纯化的半导体碳纳米管(CNT)的薄膜网络。这些薄膜中的纳米管均处于紧密接触,这允许能量流过薄膜,尽管能量传递的途径和机构很大程度上是未知的。在这里,我们使用宽带连续体来收集飞秒二维白光光谱。连续体跨越500至1,300nm,解决带隙(S-1)和更高(S-2)过渡的所有组合之间的能量转移。我们在S-2状态下观察超速能量再分配,在S-1状态下非福尔斯特能量转移和反相关能级。二维光谱揭示了能量转移的竞争途径,S-2激子取决于带隙分离的路线,而S-1激子独立于带隙。这些观察结果为理解和最终控制基于CNT的设备中的能量流的光物理学提供了基础。

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