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胶体纳米片中的放大自发发射和激光化

Amplified Spontaneous Emission and Lasing in Colloidal Nanoplatelets

作者:Burak Guzelturk;Yusuf Kelestemur;Murat Olutas;Savas Delikanli;Hilmi Volkan Demir;

关键词:amplified spontaneous emission,colloidal nanoplatelets,vertical cavity surface-emitting laser,optical gain

DOI:https://doi.org/10.1021/nn5022296

发表时间:2014年

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摘要

胶体纳米片(NPLs)最近作为有利的发光材料出现,由于其显著的光学特性,它们也显示出作为光学增益介质的巨大潜力。在这项工作中,我们系统地调查了具有不同CdS冠尺寸的CdSe核和CdSe/CdS核/冠NPLs的光学增益性能,采用单光子和双光子吸收泵浦。与仅具有核的NPLs相比,核/冠NPLs由于吸收截面增加和高效的准激子传输,从CdS冠到CdSe核,表现出更强的增益性能。单光子和双光子吸收泵浦的放大自发辐射阈值分别为41μJ/cm2和4.48mJ/cm2。这些阈值超过了在与NPLs相同的光谱范围内发射的最先进的胶体纳米晶体(如量子点、纳米棒等)的最佳报告的光学增益性能。此外,NPLs的增益系数高达650cm-1,比胶体量子点的最佳增益系数大4倍。最后,我们展示了双光子吸收泵浦的NPLs垂直腔面发射激光器,激光阈值低至2.49mJ/cm2。这些优秀的结果归因于NPLs作为光学增益介质的优越性能。


Abstract

Colloidal nanoplatelets (NPLs) have recently emerged as favorable light-emitting materials, which also show great potential as optical gain media due to their remarkable optical properties. In this work, we systematically investigate the optical gain performance of CdSe core and CdSe/CdS core/crown NPLs having different CdS crown size with one- and two-photon absorption pumping. The core/crown NPLs exhibit enhanced gain performance as compared to the core-only NPLs due to increased absorption cross section and the efficient interexciton funneling, which is from the CdS crown to the CdSe core. One- and two-photon absorption pumped amplified spontaneous emission thresholds are found as low as 41 μJ/cm2 and 4.48 mJ/cm2, respectively. These thresholds surpass the best reported optical gain performance of the state-of-the-art colloidal nanocrystals (i.e., quantum dots, nanorods, etc.) emitting in the same spectral range as the NPLs. Moreover, gain coefficient of the NPLs is measured as high as 650 cm–1, which is 4-fold larger than the best reported gain coefficient of the colloidal quantum dots. Finally, we demonstrate a two-photon absorption pumped vertical cavity surface emitting laser of the NPLs with a lasing threshold as low as 2.49 mJ/cm2. These excellent results are attributed to the superior properties of the NPLs as optical gain media.