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Chloride and Indium-Chloride-Complex Inorganic Ligands for Efficient Stabilization of Nanocrystals in Solution and Doping of Nanocrystal Solids

机译:氯化物和铟-氯化物复合无机配体可有效稳定溶液中的纳米晶体并掺杂纳米晶体固体

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摘要

Here, the surface functionalization of CdSe and CdSe/CdS core/shell nanocrystals (NCs) with compact chloride and indium-chloride-complex ligands is reported. The ligands provide not only short interparticle distances but additionally control doping and passivation of surface trap states, leading to enhanced electronic coupling in NC-based arrays. The solids based on these NCs show an excellent electronic transport behavior after heat treatment at the relatively low temperature of 190 degrees C. Indeed, the indium-chlorido-capped 4.5 nm CdSe NC based thin-film field-effect transistor reaches a saturation mobility of = 4.1 cm(2) (V s)(-1) accompanied by a low hysteresis, while retaining the typical features of strongly quantum confined semiconductor NCs. The capping with chloride ions preserves the high photoluminescence quantum yield (approximate to 66%) of CdSe/CdS core/shell NCs even when the CdS shell is relatively thin (six monolayers). The simplicity of the chemical incorporation of chlorine and indium species via solution ligand exchange, the efficient electronic passivation of the NC surface, as well as their high stability as dispersions make these materials especially attractive for wide-area solution-processable fabrication of NC-based devices.
机译:在这里,CdSe和CdSe / CdS核/壳纳米晶体(NCs)具有紧密的氯化物和氯化铟-络合物的配体的表面功能化得到了报道。配体不仅提供了较短的粒子间距离,而且还控制了表面陷阱态的掺杂和钝化,从而导致了基于NC的阵列中增强的电子耦合。基于这些NC的固体在190°C的相对较低的温度下进行热处理后显示出优异的电子传输性能。实际上,基于铟-氯化物封端的4.5 nm CdSe NC薄膜场效应晶体管的饱和迁移率达到= 4.1 cm(2)(V s)(-1),同时具有低磁滞,同时保留了强量子约束半导体NC的典型特征。即使CdS壳相对较薄(六个单层),用氯离子封盖仍可保持CdSe / CdS核/壳NC的高光致发光量子产率(约66%)。通过溶液配体交换实现氯和铟物种的化学掺入的简单性,NC表面的有效电子钝化以及它们的高稳定性(分散体),使得这些材料特别适合用于宽范围的NC基溶液加工工艺设备。

著录项

  • 来源
    《Advanced Functional Materials》 |2016年第13期|2163-2175|共13页
  • 作者单位

    Tech Univ Dresden, Phys Chem & Ctr Adv Elect Dresden cfAED, Bergstr 66b, D-01062 Dresden, Germany;

    Tech Univ Dresden, Phys Chem & Ctr Adv Elect Dresden cfAED, Bergstr 66b, D-01062 Dresden, Germany;

    Tech Univ Dresden, Dept Chem & Food Chem Bioanalyt Chem, Bergstr 66b, D-01069 Dresden, Germany;

    TU Chemnitz, Semicond Phys, D-09107 Chemnitz, Germany;

    Tech Univ Dresden, Dept Chem & Food Chem, Helmholtzstr 10, D-01069 Dresden, Germany;

    Tech Univ Dresden, Inst Angew Photophys, George Bahr Str 1, D-01069 Dresden, Germany;

    Tech Univ Dresden, Dept Chem & Food Chem Bioanalyt Chem, Bergstr 66b, D-01069 Dresden, Germany;

    Tech Univ Dresden, Dept Chem & Food Chem, Helmholtzstr 10, D-01069 Dresden, Germany|Max Planck Inst Chem Phys Solids, Nothnitzer Str 40, D-01187 Dresden, Germany;

    TU Chemnitz, Semicond Phys, D-09107 Chemnitz, Germany;

    Tech Univ Dresden, Inst Angew Photophys, George Bahr Str 1, D-01069 Dresden, Germany;

    Tech Univ Dresden, Phys Chem & Ctr Adv Elect Dresden cfAED, Bergstr 66b, D-01062 Dresden, Germany;

    Tech Univ Dresden, Phys Chem & Ctr Adv Elect Dresden cfAED, Bergstr 66b, D-01062 Dresden, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanocrystals; inorganic ligands; ligand exchange; doping; electronic transport; field-effect transistors;

    机译:纳米晶体;无机配体;配体交换;掺杂;电子传输;场效应晶体管;

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