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CdS 纳米线光波导腔的生长和钝化的变温光谱研究。

Variable temperature spectroscopy of as-grown and passivated CdS nanowire optical waveguide cavities.

机构信息

Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.

出版信息

J Phys Chem A. 2011 Apr 28;115(16):3827-33. doi: 10.1021/jp108167t. Epub 2011 Jan 7.

DOI:10.1021/jp108167t
PMID:21214218
Abstract

Semiconductor nanowire waveguide cavities hold promise for nanophotonic applications such as lasers, waveguides, switches, and sensors due to the tight optical confinement in these structures. However, to realize their full potential, high quality nanowires, whose emission at low temperatures is dominated by free exciton emission, need to be synthesized. In addition, a proper understanding of their complex optical properties, including light-matter coupling in these subwavelength structures, is required. We have synthesized very high-quality wurztite CdS nanowires capped with a 5 nm SiO(2) conformal coating with diameters spanning 100-300 nm using physical vapor and atomic layer deposition techniques and characterized their spatially resolved photoluminescence over the 77-298 K temperature range. In addition to the Fabry-Pérot resonator modulated emission from the ends of the wires, the low temperature emission from the center of the wire shows clear free excitonic peaks and LO phonon replicas, persisting up to room-temperature in the passivated wires. From laser scanning measurements we determined the absorption in the vicinity of the excitonic resonances. In addition to demonstrating the high optical quality of the nanowire crystals, these results provide the fundamental parameters for strong light-matter coupling studies, potentially leading to low threshold polariton lasers, sensitive sensors and optical switches at the nanoscale.

摘要

半导体纳米线波导腔由于在这些结构中具有紧密的光学限制,因此有望应用于纳米光子学,例如激光器、波导、开关和传感器。然而,为了充分发挥其潜力,需要合成高质量的纳米线,这些纳米线在低温下的发射由自由激子发射主导。此外,还需要对其复杂的光学性质有适当的了解,包括这些亚波长结构中的光物质耦合。我们使用物理气相沉积和原子层沉积技术合成了非常高质量的纤锌矿 CdS 纳米线,其直径在 100-300nm 之间,纳米线的顶部覆盖有 5nm 的 SiO2 保形涂层,并在 77-298K 的温度范围内对其空间分辨光致发光进行了表征。除了来自纳米线两端的法布里-珀罗谐振器调制发射之外,在中心区域的低温发射也显示出清晰的自由激子峰和 LO 声子 replicas,在钝化的纳米线中一直持续到室温。从激光扫描测量中,我们确定了激子共振附近的吸收。这些结果除了证明纳米线晶体的高光学质量外,还为强光物质耦合研究提供了基本参数,有望在纳米尺度上实现低阈值极化激子激光器、灵敏传感器和光学开关。

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