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通过时间分辨光致发光研究半导体纳米晶体中的高效载流子倍增和超快电荷分离

High-efficiency carrier multiplication and ultrafast charge separation in semiconductor nanocrystals studied via time-resolved photoluminescence.

作者信息

Schaller Richard D, Sykora Milan, Jeong Sohee, Klimov Victor I

机构信息

Chemistry Division, MS-J567, Los Alamos National Lab, Los Alamos, New Mexico 87545, USA.

出版信息

J Phys Chem B. 2006 Dec 21;110(50):25332-8. doi: 10.1021/jp065282p.

Abstract

We demonstrate novel methods for the study of multiple exciton generation from a single photon absorption event (carrier multiplication) in semiconductor nanocrystals (or nanocrystal quantum dots) that are complementary to our previously reported transient absorption method. By monitoring the time dependence of photoluminescence (PL) from CdSe nanocrystals via time-correlated single photon counting, we find that carrier multiplication is observable due to the Auger decay of biexcitons. We compare these data with similar studies using transient absorption and find that the two methods give comparable results. In addition to the observation of dynamical signatures of carrier multiplication due to the Auger decay, we observe spectral signatures of multiple excitons produced from the absorption of a single photon. PL spectra at short times following excitation with high-energy photons are red-shifted compared to the single-exciton emission band, which is consistent with previous observations of significant exciton-exciton interactions in nanocrystals. We then show using a combination of transient absorption and time-resolved PL studies that charge transfer between a nanocrystal and a Ru-based catalyst model compound takes place on a time scale that is faster than Auger recombination time constants, which points toward a possible design of donor-acceptor assemblies that can be utilized to take advantage of the carrier multiplication process.

摘要

我们展示了用于研究半导体纳米晶体(或纳米晶体量子点)中单个光子吸收事件(载流子倍增)产生多个激子的新方法,这些方法与我们之前报道的瞬态吸收方法互补。通过时间相关单光子计数监测CdSe纳米晶体的光致发光(PL)的时间依赖性,我们发现由于双激子的俄歇衰变,载流子倍增是可观察到的。我们将这些数据与使用瞬态吸收的类似研究进行比较,发现这两种方法给出了可比的结果。除了观察到由于俄歇衰变导致的载流子倍增的动力学特征外,我们还观察到单个光子吸收产生的多个激子的光谱特征。与单激子发射带相比,用高能光子激发后短时间的PL光谱发生红移,这与之前在纳米晶体中观察到的显著激子-激子相互作用一致。然后,我们结合瞬态吸收和时间分辨PL研究表明,纳米晶体与基于Ru的催化剂模型化合物之间的电荷转移发生在比俄歇复合时间常数更快的时间尺度上,这指向了一种可能的供体-受体组件设计,可用于利用载流子倍增过程。

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