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核壳结构PbTe@PbS胶体半导体纳米晶体组件中的独电子传输

Exclusive Electron Transport in Core@Shell PbTe@PbS Colloidal Semiconductor Nanocrystal Assemblies.

作者信息

Miranti Retno, Shin Daiki, Septianto Ricky Dwi, Ibáñez Maria, Kovalenko Maksym V, Matsushita Nobuhiro, Iwasa Yoshihiro, Bisri Satria Zulkarnaen

机构信息

Department of Materials Science and Engineering, Tokyo Institute of Technology, 2-12-1 Ookayama, Meguro, Tokyo 152-8550, Japan.

Quantum Phase Electronic Center (QPEC) and Department of Applied Physics, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

出版信息

ACS Nano. 2020 Mar 24;14(3):3242-3250. doi: 10.1021/acsnano.9b08687. Epub 2020 Mar 2.

Abstract

Assemblies of colloidal semiconductor nanocrystals (NCs) in the form of thin solid films leverage the size-dependent quantum confinement properties and the wet chemical methods vital for the development of the emerging solution-processable electronics, photonics, and optoelectronics technologies. The ability to control the charge carrier transport in the colloidal NC assemblies is fundamental for altering their electronic and optical properties for the desired applications. Here we demonstrate a strategy to render the solids of narrow-bandgap NC assemblies exclusively electron-transporting by creating a type-II heterojunction shelling. Electronic transport of molecularly cross-linked PbTe@PbS core@shell NC assemblies is measured using both a conventional solid gate transistor and an electric-double-layer transistor, as well as compared with those of core-only PbTe NCs. In contrast to the ambipolar characteristics demonstrated by many narrow-bandgap NCs, the core@shell NCs exhibit exclusive n-type transport, .., drastically suppressed contribution of holes to the overall transport. The PbS shell that forms a type-II heterojunction assists the selective carrier transport by heavy doping of electrons into the PbTe-core conduction level and simultaneously strongly localizes the holes within the NC core valence level. This strongly enhanced n-type transport makes these core@shell NCs suitable for applications where ambipolar characteristics should be actively suppressed, in particular, for thermoelectric and electron-transporting layers in photovoltaic devices.

摘要

以固体薄膜形式存在的胶体半导体纳米晶体(NCs)组件利用了尺寸依赖的量子限制特性以及对新兴的可溶液处理电子、光子和光电子技术发展至关重要的湿化学方法。控制胶体NC组件中电荷载流子传输的能力对于改变其电子和光学特性以实现所需应用至关重要。在此,我们展示了一种策略,通过创建II型异质结壳层,使窄带隙NC组件的固体专门用于电子传输。使用传统的固体栅极晶体管和双电层晶体管测量了分子交联的PbTe@PbS核壳NC组件的电子传输,并与仅含核的PbTe NCs的电子传输进行了比较。与许多窄带隙NCs表现出的双极性特性相反,核壳NCs表现出独特的n型传输,即空穴对整体传输的贡献大幅抑制。形成II型异质结的PbS壳层通过将电子重掺杂到PbTe核导带水平来辅助选择性载流子传输,同时将空穴强烈限制在NC核价带水平内。这种强烈增强的n型传输使得这些核壳NCs适用于应积极抑制双极性特性的应用,特别是用于光伏器件中的热电和电子传输层。

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