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Chemical and thermodynamic control of the surface of semiconductor nanocrystals for designer white light emitters

机译:设计师用白光发射器对半导体纳米晶体表面的化学和热力学控制

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摘要

Small CdSe semiconductor nanocrystals with diameters below 2 nm are thought to emit white light due to random surface defects which result in a broad distribution of midgap emitting states, thereby preventing rational design of small nanocrystal white light emitters. We perform temperature dependent photoluminescence experiments before and after ligand exchange and electron transfer simulations to reveal a very simple microscopic picture of the origin of the white light. These experiments and simulations reveal that these small nanocrystals can be physically modeled in precisely the same way as normal-sized semiconductor nanocrystals; differences in their emission spectra arise from their surface thermodynamics. The white light emission is thus a consequence of the thermodynamic relationship between a core excitonic state and an optically bright surface state with good quantum yield. By virtue of this understanding of the surface and the manner in which it is coupled to the core excitonic states of these nanocrystals, we show both chemical and thermodynamic control of the photoluminescence spectra. We find that using both temperature and appropriate choice in ligands, one can rationally control the spectra so as to engineer the surface to target color rendering coordinates for displays and white light emitters.
机译:直径小于2 nm的小型CdSe半导体纳米晶体被认为由于随机表面缺陷而发出白光,这会导致中间能隙发射态的分布较宽,从而妨碍了小型纳米晶体白光发射器的合理设计。我们在配体交换和电子转移模拟前后进行与温度有关的光致发光实验,以揭示白光起源的非常简单的显微图片。这些实验和模拟表明,可以以与常规尺寸的半导体纳米晶体完全相同的方式对这些小的纳米晶体进行物理建模。它们的发射光谱的差异是由它们的表面热力学引起的。因此,白光发射是核心激子态与具有良好量子产率的光学亮表面态之间的热力学关系的结果。通过对表面的理解以及将其与这些纳米晶体的核心激子态耦合的方式,我们显示了光致发光光谱的化学和热力学控制。我们发现,在配体中使用温度和适当选择,可以合理地控制光谱,从而将表面设计为目标的显示器和白光发射器的显色坐标。

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