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甘油键合 3C-SiC 纳米晶固态薄膜呈现出宽且稳定的蓝紫光至蓝绿光发射。

Glycerol-bonded 3C-SiC nanocrystal solid films exhibiting broad and stable violet to blue-green emission.

机构信息

National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing, People's Republic of China.

出版信息

Nano Lett. 2010 Apr 14;10(4):1466-71. doi: 10.1021/nl100407d.

Abstract

We have produced glycerol-bonded 3C-SiC nanocrystal (NC) films, which when excited by photons of different wavelengths, produce strong and tunable violet to blue-green (360-540 nm) emission as a result of the quantum confinement effects rendered by the 3C-SiC NCs. The emission is so intense that the emission spots are visible to the naked eyes. The light emission is very stable and even after storing in air for more than six months, no intensity degradation can be observed. X-ray photoelectron spectroscopy and absorption fine structure measurements indicate that the Si-terminated NC surfaces are completely bonded to glycerol molecules. Calculations of geometry optimization and electron structures based on the density functional theory for 3C-SiC NCs with attached glycerol molecules show that these molecules are bonded on the NCs causing strong surface structural change, while the isolated levels in the conduction band of the bare 3C-SiC NCs are replaced with quasi-continuous bands that provide continuous tunability of the emitted light by changing the frequencies of exciting laser. As an application, we demonstrate the potential of using 3C-SiC NCs to fabricate full-color emitting solid films by incorporating porous silicon.

摘要

我们制备了甘油键合的 3C-SiC 纳米晶(NC)薄膜,当用不同波长的光子激发时,由于 3C-SiC NC 产生的量子限制效应,产生强且可调谐的蓝紫色到蓝绿色(360-540nm)发射。发射非常强烈,以至于肉眼可以看到发射点。发光非常稳定,即使在空气中储存超过六个月后,也观察不到强度降低。X 射线光电子能谱和吸收精细结构测量表明,Si 终止的 NC 表面完全与甘油分子键合。基于密度泛函理论对附着甘油分子的 3C-SiC NC 的几何优化和电子结构的计算表明,这些分子键合在 NC 上,导致强烈的表面结构变化,而在裸 3C-SiC NC 的导带中孤立的能级被准连续带所取代,通过改变激发激光的频率来提供发射光的连续可调谐性。作为应用,我们通过掺入多孔硅来展示 3C-SiC NC 制备全彩发射固体薄膜的潜力。

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