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配体作为半导体纳米晶体合成与组装中的通用分子工具。

Ligands as a universal molecular toolkit in synthesis and assembly of semiconductor nanocrystals.

作者信息

Lee Hyeonjun, Yoon Da-Eun, Koh Sungjun, Kang Moon Sung, Lim Jaehoon, Lee Doh C

机构信息

Department of Chemical and Biomolecular Engineering , KAIST Institute for the Nanocentury , Korea Advanced Institute of Science and Technology (KAIST) , Daejeon 34141 , Republic of Korea . Email:

Department of Chemical and Biomolecular Engineering , Sogang University , Seoul 04107 , Republic of Korea.

出版信息

Chem Sci. 2020 Feb 10;11(9):2318-2329. doi: 10.1039/c9sc05200c. eCollection 2020 Mar 7.

Abstract

Successful exploitation of semiconductor nanocrystals (NCs) in commercial products is due to the remarkable progress in the wet-chemical synthesis and controlled assembly of NCs. Central to the cadence of this progress is the ability to understand how NC growth and assembly can be controlled kinetically and thermodynamically. The arrested precipitation strategy offers a wide opportunity for materials selection, size uniformity, and morphology control. In this colloidal approach, capping ligands play an instrumental role in determining growth parameters and inter-NC interactions. The impetus for exquisite control over the size and shape of NCs and orientation of NCs in an ensemble has called for the use of two or more types of ligands in the system. In multiple ligand approaches, ligands with different functionalities confer extended tunability, hinting at the possibility of atomic-precision growth and long-range ordering of desired superlattices. Here, we highlight the progress in understanding the roles of ligands in size and shape control and assembly of NCs. We discuss the implication of the advances in the context of optoelectronic applications.

摘要

半导体纳米晶体(NCs)在商业产品中的成功应用得益于其在湿化学合成和可控组装方面取得的显著进展。这一进展的关键在于能够从动力学和热力学角度理解如何控制纳米晶体的生长和组装。捕获沉淀策略为材料选择、尺寸均匀性和形态控制提供了广泛的机会。在这种胶体方法中,封端配体在确定生长参数和纳米晶体间相互作用方面起着重要作用。对纳米晶体尺寸和形状以及纳米晶体在集合体中的取向进行精确控制的需求促使人们在体系中使用两种或更多类型的配体。在多配体方法中,具有不同功能的配体赋予了更大的可调性,这暗示了实现所需超晶格原子精度生长和长程有序排列的可能性。在此,我们重点介绍在理解配体在纳米晶体尺寸和形状控制以及组装过程中所起作用方面取得的进展。我们还将讨论这些进展在光电应用背景下的意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbcb/7069383/df16436a68a4/c9sc05200c-f1.jpg

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