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首页> 外文期刊>Nature nanotechnology >Surface chemistry and buried interfaces in all-inorganic nanocrystalline solids.
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Surface chemistry and buried interfaces in all-inorganic nanocrystalline solids.

机译:全无机纳米晶体固体中的表面化学和掩埋界面。

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摘要

Semiconducting nanomaterials synthesized using wet chemical techniques play an important role in emerging optoelectronic and photonic technologies. Controlling the surface chemistry of the nano building blocks and their interfaces with ligands is one of the outstanding challenges for the rational design of these systems. We present an integrated theoretical and experimental approach to characterize, at the atomistic level, buried interfaces in solids of InAs nanoparticles capped with Sn_(2)S_(6)~(4-)ligands. These prototypical nanocomposites are known for their promising transport properties and unusual negative photoconductivity. We found that inorganic ligands dissociate on InAs to form a surface passivation layer. A nanocomposite with unique electronic and transport properties is formed, that exhibits type II heterojunctions favourable for exciton dissociation. We identified how the matrix density, sulfur content and specific defects may be designed to attain desirable electronic and transport properties, and we explain the origin of the measured negative photoconductivity of the nanocrystalline solids.
机译:使用湿化学技术合成的半导体纳米材料在新兴光电和光子技术中起着重要作用。控制纳米积木的表面化学及其与配体的界面是这些系统合理设计的突出挑战之一。我们介绍了在原子水平,在原子纳米粒子的固体覆盖用Sn_(2)S_(6)〜(4-)配体的固定的掩埋界面的综合理论和实验方法。这些原型纳米复合材料以其有前途的运输性能和不寻常的负光电导性是已知的。我们发现无机配体在INA上解散形成表面钝化层。形成具有独特的电子和传输性质的纳米复合材料,其表现出II型杂交功能,良好的激子解离。我们确定了如何设计基质密度,硫含量和特异性缺陷以获得所需的电子和运输性能,并且我们解释了纳米晶体固体的测量负光电导性的来源。

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  • 来源
    《Nature nanotechnology 》 |2018年第9期| 共8页
  • 作者单位

    Max-Planck-Institut für Eisenforschung GmbH Düsseldorf Germany;

    Department of Chemistry and James Franck Institute University of Chicago Chicago IL USA;

    Department of Chemistry and James Franck Institute University of Chicago Chicago IL USA;

    Department of Chemistry and James Franck Institute University of Chicago Chicago IL USA;

    Department of Chemistry and James Franck Institute University of Chicago Chicago IL USA;

    Max-Planck-Institut für Eisenforschung GmbH Düsseldorf Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料 ;
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