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首页> 外文期刊>Journal of the American Chemical Society >In Situ Constructing the Kinetic Roadmap of Octahedral Nanocrystal Assembly Toward Controlled Superlattice Fabrication
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In Situ Constructing the Kinetic Roadmap of Octahedral Nanocrystal Assembly Toward Controlled Superlattice Fabrication

机译:原位构建八面体纳米晶体组件的动力学路线图对控制的超晶格制造

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摘要

Crystallization and growth of anisotropic nanocryst-als (NCs) into distinct superlattices were studied in real time, yielding kinetic details and designer parameters for scale-up fabrication of functional materials. Using octahedral PbS NC blocks, we discovered that NC assembly involves a primary lamellar ordering of NC-detached Pb(OA)_2 molecules on the front-spreading solvent surfaces. Upon a spontaneous increase of NC concentration during solvent processing, PbS NCs preferentially self-assembled into an orientation-disordered face-centered cubic (fcc) superlattice, which subsequently transformed into a body-centered cubic (bcc) superlattice with single NC-orientational ordering across individual domains. Unlike the deformation-based transformation route claimed previously, this solid-solid phase transformation involved a hidden intermediate formation of a lamellar-confined liquid interface at cost of the disassembly (melting) of small fcc grains. Such highly condensed and liquidized NCs recrystallized into the stable bcc phase with an energy reduction of 1.16 k_BT. This energy-favorable and high NC-fraction-driven bcc phase grew as a 2D film at a propagation rate of 0.74 μm/min, smaller than the 1.23 μm/min observed in the early nucleated fcc phase under a dilute NC environment. Taking such insights and defined parameters, we designed experiments to manipulate the NC assembly pathway and achieved scalable fabrication of a large/ single bcc supercrystal with coherent ordering of NC translation and atomic plane orientation. This study not only provides a design avenue for controllable fabrication of a large supercrystal with desired superlattices for application but also sheds new light on the nature of crystal nucleation/growth and phase transformation by extending the lengths from the nanoscale into the atomic scale, molecular scale, and microscale levels.
机译:实时研究了各向异性纳米晶体 - Als(NCS)的各向异性纳米晶体(NCS)的结晶和生长,得到动力学细节和设计者参数,用于采用功能材料的放大制造。使用八面体PBS NC块,我们发现NC组件涉及在前涂覆溶剂表面上的NC分离的PB(OA)_2分子的主要层状排序。在溶剂加工过程中NC浓度的自发增加后,PBS NC优先自组装成定向无序的面为中心的立方(FCC)超晶格,随后用单个NC定向排序转换成体为中心的立方(BCC)超晶格在各个领域。与先前所要求保护的变形的转化路线不同,该固体固相变化涉及小型FCC颗粒的拆卸(熔化)成本的层状内液界面的隐藏中间形成。这种高浓缩的和液化的NCs重结晶,能量减少为1.16k_BT。这种能量良好和高NC - 级分驱动的BCC阶段以0.74μm/ min的传播速率而成的2D膜,小于在稀释的NC环境下在早期核心的FCC相中观察到的1.23μm/ min。采取此类见解和定义参数,我们设计了操作NC组装路径的实验,并实现了具有NC平移和原子平面方向的相干顺序的大/单个BCC超自晶的可扩展制造。这项研究不仅提供了一种设计途径,可以使用所需超晶格的施加的大型超短术的设计途径,但也通过从纳米级延伸到原子尺度,分子尺度的长度来缩小新的光线。和微观级别。

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  • 来源
    《Journal of the American Chemical Society》 |2021年第11期|4234-4243|共10页
  • 作者单位

    Cornell High Energy Synchrotron Source Cornell University Ithaca New York 14853 United States;

    Department of Physics South University of Science and Technology Shenzhen Guangdong 518055 China;

    Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education Institutes of Physical Science and Information Technology Anhui University Hefei Anhui 230601 China;

    Institute of Physical Chemistry University of Hamburg 20146 Hamburg Germany;

    Institute of Physics University of Rostock 18059 Rostock Germany Department of Chemistry Swansea University Swansea SA2 8PP Uunited Kingdom;

    Cornell High Energy Synchrotron Source Cornell University Ithaca New York 14853 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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