Surface Engineering of Metal and Semiconductor Nanocrystal Assemblies and Their Optical and Electronic Devices

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2023-06-21 DOI:10.1021/acs.accounts.3c00147
Yun Chang Choi, Jaeyoung Lee, Jonah J. Ng and Cherie R. Kagan*, 
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Abstract

Colloidal nanocrystals (NCs) are composed of inorganic cores and organic or inorganic ligand shells and serve as building blocks of NC assemblies. Metal and semiconductor NCs are well known for the size-dependent physical properties of their cores. The large NC surface-to-volume ratio and the space between NCs in assemblies places significant importance on the composition of the NC surface and ligand shell. Nonaqueous colloidal NC syntheses use relatively long organic ligands to control NC size and uniformity during growth and to prepare stable NC dispersions. However, these ligands create large interparticle distances that dilute the metal and semiconductor NC properties of their assemblies. In this Account, we describe postsynthesis chemical treatments to engineer the NC surface and design the optical and electronic properties of NC assemblies. In metal NC assemblies, compact ligand exchange reduces the interparticle distance and drives an insulator-to-metal transition tuning the dc resistivity over a 1010 range and the real part of the optical dielectric function from positive to negative across the visible-to-IR region. Juxtaposing NC and bulk metal thin films in bilayers allows the differential chemical and thermal addressability of the NC surface to be exploited in device fabrication. Ligand exchange and thermal annealing densifies the NC layer, creating interfacial misfit strain that triggers folding of the bilayers and is used to fabricate, with only one lithography step, large-area 3D chiral metamaterials. In semiconductor NC assemblies, chemical treatments such as ligand exchange, doping, and cation exchange control the interparticle distance and composition to add impurities, tailor stoichiometry, or make entirely new compounds. These treatments are employed in longer studied II–VI and IV–VI materials and are being developed as interest in III–V and I–III–VI2 NC materials grows. NC surface engineering is used to design NC assemblies with tailored carrier energy, type, concentration, mobility, and lifetime. Compact ligand exchange increases the coupling between NCs but can introduce intragap states that scatter and reduce the lifetime of carriers. Hybrid ligand exchange with two different chemistries can enhance the mobility-lifetime product. Doping increases carrier concentration, shifts the Fermi energy, and increases carrier mobility, creating n- and p-type building blocks for optoelectronic and electronic devices and circuits. Surface engineering of semiconductor NC assemblies is also important to modify device interfaces to allow the stacking and patterning of NC layers and to realize excellent device performance. It is used to construct NC-integrated circuits, exploiting the library of metal, semiconductor, and insulator NCs, to achieve all-NC, solution-fabricated transistors.

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金属和半导体纳米晶组件及其光学和电子器件的表面工程
胶体纳米晶体(NCs)由无机核和有机或无机配体壳组成,是纳米晶体组装的基石。众所周知,金属和半导体nc的核心具有与尺寸相关的物理特性。大的NC表面体积比和装配中NC之间的空间对NC表面和配体壳的组成具有重要意义。非水胶体NC合成使用相对较长的有机配体来控制NC的尺寸和生长过程中的均匀性,并制备稳定的NC分散体。然而,这些配体产生较大的粒子间距离,稀释了其组件的金属和半导体NC特性。在这篇文章中,我们描述了合成后的化学处理来设计NC表面和设计NC组件的光学和电子特性。在金属NC组件中,紧凑的配体交换减少了粒子间的距离,并驱动绝缘体到金属的转变,在1010范围内调整直流电阻率,并在可见光到红外区域内将光学介电函数的实部从正变为负。将NC和大块金属薄膜并置在双层中,可以在器件制造中利用NC表面的不同化学和热寻址性。配体交换和热退火使NC层致密化,产生界面错配应变,从而触发双层的折叠,并用于仅用一个光刻步骤制造大面积3D手性超材料。在半导体数控组件中,化学处理如配体交换、掺杂和阳离子交换控制粒子间距离和组成,以添加杂质、调整化学计量或制造全新的化合物。这些处理方法用于研究时间较长的II-VI和IV-VI材料,并且随着对III-V和I-III-VI2 NC材料的兴趣的增长,正在开发中。数控表面工程用于设计具有定制载流子能量、类型、浓度、流动性和寿命的数控组件。紧凑的配体交换增加了NCs之间的耦合,但可能引入分散和降低载流子寿命的内部状态。两种不同化学物质的杂化配体交换可以提高产物的迁移寿命。掺杂增加了载流子浓度,改变了费米能量,增加了载流子迁移率,为光电和电子器件和电路创造了n型和p型构建块。半导体数控组件的表面工程对于修改器件接口以实现数控层的堆叠和图案化以及实现优异的器件性能也很重要。它用于构建nc集成电路,利用金属,半导体和绝缘体nc库,实现全nc,溶液制造晶体管。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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