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胶体量子点中的慢电子冷却

Slow electron cooling in colloidal quantum dots.

作者信息

Pandey Anshu, Guyot-Sionnest Philippe

机构信息

James Franck Institute, University of Chicago, 929 East 57th Street, Chicago, IL 60637, USA.

出版信息

Science. 2008 Nov 7;322(5903):929-32. doi: 10.1126/science.1159832.

Abstract

Hot electrons in semiconductors lose their energy very quickly (within picoseconds) to lattice vibrations. Slowing this energy loss could prove useful for more efficient photovoltaic or infrared devices. With their well-separated electronic states, quantum dots should display slow relaxation, but other mechanisms have made it difficult to observe. We report slow intraband relaxation (>1 nanosecond) in colloidal quantum dots. The small cadmium selenide (CdSe) dots, with an intraband energy separation of approximately 0.25 electron volts, are capped by an epitaxial zinc selenide (ZnSe) shell. The shell is terminated by a CdSe passivating layer to remove electron traps and is covered by ligands of low infrared absorbance (alkane thiols) at the intraband energy. We found that relaxation is markedly slowed with increasing ZnSe shell thickness.

摘要

半导体中的热电子会非常迅速地(在皮秒内)将其能量损失给晶格振动。减缓这种能量损失对于更高效的光伏或红外设备可能会很有用。量子点具有分离良好的电子态,理应显示出缓慢的弛豫过程,但其他机制使得难以观察到这一现象。我们报告了胶体量子点中的带内缓慢弛豫(>1纳秒)。小型硒化镉(CdSe)量子点,其带内能量间隔约为0.25电子伏特,由外延硒化锌(ZnSe)壳层包覆。该壳层由CdSe钝化层终止以去除电子陷阱,并在带内能量处被低红外吸收率的配体(烷硫醇)覆盖。我们发现,随着ZnSe壳层厚度的增加,弛豫明显减慢。

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