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“巨型”纳米晶体中受抑制的俄歇复合提高了光学增益性能。

Suppressed auger recombination in "giant" nanocrystals boosts optical gain performance.

作者信息

García-Santamaría Florencio, Chen Yongfen, Vela Javier, Schaller Richard D, Hollingsworth Jennifer A, Klimov Victor I

机构信息

Chemistry Division and Center for Integrated Nanotechnologies, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Nano Lett. 2009 Oct;9(10):3482-8. doi: 10.1021/nl901681d.

Abstract

Many potential applications of semiconductor nanocrystals are hindered by nonradiative Auger recombination wherein the electron-hole (exciton) recombination energy is transferred to a third charge carrier. This process severely limits the lifetime and bandwidth of optical gain, leads to large nonradiative losses in light-emitting diodes and photovoltaic cells, and is believed to be responsible for intermittency ("blinking") of emission from single nanocrystals. The development of nanostructures in which Auger recombination is suppressed has recently been the subject of much research in the colloidal nanocrystal field. Here, we provide direct experimental evidence that so-called "giant" nanocrystals consisting of a small CdSe core and a thick CdS shell exhibit a significant (orders of magnitude) suppression of Auger decay rates. As a consequence, even multiexcitons of a very high order exhibit significant emission efficiencies, which allows us to demonstrate optical amplification with an extraordinarily large bandwidth (>500 meV) and record low excitation thresholds. This demonstration represents an important milestone toward practical lasing technologies utilizing solution-processable colloidal nanoparticles.

摘要

半导体纳米晶体的许多潜在应用受到非辐射俄歇复合的阻碍,在这种复合过程中,电子 - 空穴(激子)复合能量会转移到第三个电荷载流子上。这个过程严重限制了光学增益的寿命和带宽,导致发光二极管和光伏电池中出现大量非辐射损耗,并且被认为是造成单个纳米晶体发射间歇性(“闪烁”)的原因。最近,抑制俄歇复合的纳米结构的开发一直是胶体纳米晶体领域众多研究的主题。在此,我们提供了直接的实验证据,即由小的CdSe核和厚的CdS壳组成的所谓“巨型”纳米晶体表现出对俄歇衰减率的显著(几个数量级)抑制。因此,即使是非常高阶的多激子也表现出显著的发射效率,这使我们能够展示具有超大带宽(>500 meV)和创纪录低激发阈值的光放大。这一展示代表了利用可溶液加工的胶体纳米颗粒实现实际激光技术的一个重要里程碑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e982/2897714/34c4dd92c558/nihms211117f1.jpg

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