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Regulating Multiple Variables To Understand the Nucleation and Growth and Transformation of PbS Nanocrystal Superlattices

机译:调节多个变量以了解PbS纳米晶超晶格的形核,生长和转变

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摘要

Nanocrystals (NCs) can self-assemble into ordered superlattices with collective properties, but the ability for controlling NC assembly remains poorly understandable toward achievement of desired superlattice. This work regulates several key variables of PbS NC assembly (e.g., NC concentration and solubility, solvent type, evaporation rate, seed mediation and thermal treatment), and thoroughly exploits the nucleation and growth as well as subsequent superlattice transformation of NC assembles and underneath mechanisms. PbS NCs in toluene self-assemble into a single face-centered-cubic (fcc) and body-centered-cubic (bcc) superlattice, respectively, at concentrations ≤17.5 and >70 mg/mL, but an intermediate concentration between them causes the coexistence of the two superlattices. Differendy, NCs in hexane or chloroform self-assemble into only a single bcc superlattice. Distinct controls of NC assembly in solvent with variable concentrations confirm the NC concentration/solubility mediated nucleation and growth of superlattice, in which an evaporation-induced local gradient of NC concentration causes simultaneous nucleation of the two superlattices. The observation for the dense packing planes of NCs in fast growing fcc rather than bcc reveals the difference of entropic driving forces responsible for the two distinct superlattices. Decelerating the solvent evaporation does not amend the superlattice symmetry, but improves the superlattice crystallinity. In addition to shrinking the superlattice volume, thermal treatment also transforms the bcc to an fcc superlattice at 175 ℃. Through a seed-meditated growth, the concentration-dependent superlattice does not change lattice symmetry over the course of continuous growth, whereas the newly nucleated secondary small nuclei through a concentration change have relatively higher surface energy and quickly dissolve in solution, providing additional NC sources for the ripening of the primarily nucleated larger and stable seeds. The observations under multiple controls of assembly parameters not only provide insights into the nucleation and growth as well as transformation of various superlattice polymorphs but also lay foundation for controlled fabrication of desired superlattice with tailored property.
机译:纳米晶体(NCs)可以自组装成具有集体性质的有序超晶格,但是对于实现所需的超晶格,控制NC组装的能力仍然难以理解。这项工作调节了PbS NC组装的几个关键变量(例如NC浓度和溶解度,溶剂类型,蒸发速率,种子介导和热处理),并充分利用了NC组装的成核和生长以及随后的超晶格转变及其机理。甲苯中的PbS NCs分别自组装成一个面心立方(bcc)超晶格和一个面心立方(bcc)超晶格,其浓度分别≤17.5和> 70 mg / mL,但它们之间的中间浓度导致两个超晶格共存。不同的是,己烷或氯仿中的NC只能自组装成一个密件抄送超晶格。不同浓度的溶剂中NC组装的不同控制证实了NC浓度/溶解度介导的超晶格成核和生长,其中蒸发诱导的NC浓度局部梯度引起两个超晶格的同时成核。对快速增长的fcc而不是bcc中NC的密集堆积平面的观察揭示了负责两个不同超晶格的熵驱动力的差异。降低溶剂蒸发不会改变超晶格的对称性,但会改善超晶格的结晶度。除了缩小超晶格体积外,热处理还会在175℃将bcc转变为fcc超晶格。通过种子冥想的生长,浓度依赖性超晶格在连续生长过程中不会改变晶格对称性,而通过浓度变化而新成核的次要小核具有相对较高的表面能并迅速溶解于溶液中,从而提供了额外的NC来源用于初生核的较大且稳定的种子的成熟。在装配参数的多个控制下的观察结果不仅提供了对各种超晶格多晶型物的形核和生长以及转化的深入了解,而且为受控制造具有定制特性的所需超晶格奠定了基础。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2017年第41期|14476-14482|共7页
  • 作者单位

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

    Sandia National Laboratories, Advanced Materials Laboratory, 1001 University Boulevard SE, Albuquerque, New Mexico 87106, United States;

    Department of Chemistry, University of Florida, Gainesville, Florida 32611, United States;

    Sandia National Laboratories, Advanced Materials Laboratory, 1001 University Boulevard SE, Albuquerque, New Mexico 87106, United States,Department of Chemical and Nuclear Engineering, Center for Micro-Engineered Materials, University of New Mexico, Albuquerque, New Mexico 87106, United States;

    Department of Chemistry, University of Florida, Gainesville, Florida 32611, 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);
  • 原文格式 PDF
  • 正文语种 eng
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