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具有分级组成的半导体种子纳米棒,表现出高荧光量子产率、高偏振度和最小的闪烁。

Semiconductor Seeded Nanorods with Graded Composition Exhibiting High Quantum-Yield, High Polarization, and Minimal Blinking.

机构信息

The Institute of Chemistry and Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem , Jerusalem 91904, Israel.

Department of Chemistry, University of California and Lawrence Berkeley National Laboratory , Berkeley, California 94720-1460, United States.

出版信息

Nano Lett. 2017 Apr 12;17(4):2524-2531. doi: 10.1021/acs.nanolett.7b00254. Epub 2017 Feb 28.

Abstract

Seeded semiconductor nanorods represent a unique family of quantum confined materials that manifest characteristics of mixed dimensionality. They show polarized emission with high quantum yield and fluorescence switching under an electric field, features that are desirable for use in display technologies and other optical applications. So far, their robust synthesis has been limited mainly to CdSe/CdS heterostructures, thereby constraining the spectral tunability to the red region of the visible spectrum. Herein we present a novel synthesis of CdSe/CdZnS seeded nanorods with a radially graded composition that show bright and highly polarized green emission with minimal intermittency, as confirmed by ensemble and single nanorods optical measurements. Atomistic pseudopotential simulations elucidate the importance of the Zn atoms within the nanorod structure, in particular the effect of the graded composition. Thus, the controlled addition of Zn influences and improves the nanorods' optoelectronic performance by providing an additional handle to manipulate the degree confinement beyond the common size control approach. These nanorods may be utilized in applications that require the generation of a full, rich spectrum such as energy-efficient displays and lighting.

摘要

种晶半导体纳米棒是一类独特的量子限制材料,具有混合维度的特性。它们表现出偏振发射和在电场下的荧光开关特性,这些特性在显示技术和其他光学应用中很有应用前景。到目前为止,它们的稳健合成主要限于 CdSe/CdS 异质结构,从而将光谱可调谐性限制在可见光谱的红色区域。在此,我们提出了一种新颖的 CdSe/CdZnS 种晶纳米棒的合成方法,这种纳米棒具有径向梯度组成,表现出明亮且高度偏振的绿色发射,间歇性最小,这一点通过集总测量和单个纳米棒的光学测量得到了证实。原子赝势模拟阐明了 Zn 原子在纳米棒结构中的重要性,特别是梯度组成的影响。因此,通过提供除常见的尺寸控制方法之外的额外控制手段,可以控制 Zn 的添加量来影响和改善纳米棒的光电性能。这些纳米棒可用于需要产生全光谱的应用,例如高效节能的显示器和照明。

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