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一种通过溶液法制备的发射波长与温度无关的1.53微米量子点激光器。

A solution-processed 1.53 mum quantum dot laser with temperature-invariant emission wavelength.

作者信息

Hoogland S, Sukhovatkin V, Howard I, Cauchi S, Levina L, Sargent E H

出版信息

Opt Express. 2006 Apr 17;14(8):3273-81. doi: 10.1364/oe.14.003273.

Abstract

Sources of coherent, monochromatic short-wavelength infrared (1-2 mum) light are essential in telecommunications, biomedical diagnosis, and optical sensing. Today's semiconductor lasers are made by epitaxial growth on a lattice-matched single-crystal substrate. This strategy is incompatible with integration on silicon. Colloidal quantum dots grown in solution can, in contrast, be coated onto any surface. Here we show a 1.53 mum laser fabricated using a remarkably simple process: dipping a glass capillary into a colloidal suspension of semiconductor quantum dots. We developed the procedures to produce a smooth, low-scattering-loss film inside the capillary, resulting in a whispering gallery mode laser with a well-defined threshold. While there exist three prior reports of optical gain in infrared-emitting colloidal quantum dots [1,2,3], this work represents the first report of an infrared laser made using solution processing. We also report dlambda(max)/dT, the temperature-sensitivity of lasing wavelength, of 0.03 nm/K, the lowest ever reported in a colloidal quantum dot system and 10 times lower than in traditional semiconductor quantum wells.

摘要

相干、单色短波长红外(1 - 2微米)光源在电信、生物医学诊断和光学传感领域至关重要。当今的半导体激光器是通过在晶格匹配的单晶衬底上外延生长制成的。这种策略与在硅上的集成不兼容。相比之下,溶液中生长的胶体量子点可以涂覆在任何表面上。在此,我们展示了一种通过极为简单的工艺制造的1.53微米激光器:将玻璃毛细管浸入半导体量子点的胶体悬浮液中。我们开发了相关程序,以在毛细管内部制备出光滑、低散射损耗的薄膜,从而得到具有明确阈值的回音壁模式激光器。虽然此前已有三篇关于红外发射胶体量子点光学增益的报道[1,2,3],但这项工作是首次报道使用溶液处理制造的红外激光器。我们还报告了激射波长的温度敏感性dlambda(max)/dT为0.03 nm/K,这是胶体量子点系统中报道过的最低值,比传统半导体量子阱低10倍。

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