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Many-Body Effects in Nanocrystal Superlattices: Departure from Sphere Packing Explains Stability of Binary Phases

机译:纳米晶体超晶格中的多体效应:球堆积的偏离说明了二元相的稳定性

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摘要

This work analyzes the role of hydrocarbon ligands in the self-assembly of nanocrystal (NC) superlattices. Typical NCs, composed of an inorganic core of radius R and a layer of capping ligands with length L, can be described as soft spheres with softness parameter L/R. Using particle tracking measurements of transmission electron microscopy images, we find that close-packed NCs, like their hard-sphere counterparts, fill space at approximately 74% density independent of softness. We uncover deformability of the ligand capping layer that leads to variable effective NC size in response to the coordination environment. This effect plays an important role in the packing of particles in binary nanocrystal superlattices (BNSLs). Measurements on BNSLs composed of NCs of varying softness in several coordination geometries indicate that NCs deform to produce dense BNSLs that would otherwise be low-density arrangements if the particles remained spherical. Consequently, rationalizing the mixing of two NC species during BNSL self-assembly need not employ complex energetic interactions. We summarize our analysis in a set of packing rules. These findings contribute to a general understanding of entropic effects during crystallization of deformable objects (e.g., nanoparticles, micelles, globular proteins) that can adapt their shape to the local coordination environment.
机译:这项工作分析了碳氢化合物配体在纳米晶体(NC)超晶格的自组装中的作用。由半径为R的无机核和长度为L的封端配体层组成的典型NCs可描述为具有软度参数L / R的软球。使用透射电子显微镜图像的颗粒跟踪测量,我们发现密堆积的NC像它们的硬球对应物一样,以大约74%的密度填充空间,而与柔软度无关。我们发现配体覆盖层的可变形性,导致响应于配位环境的有效NC大小可变。这种作用在二元纳米晶体超晶格(BNSLs)中的颗粒堆积中起着重要作用。对由具有不同配比几何形状的不同柔软度的NC组成的BNSL进行的测量表明,NC会变形以生成致密的BNSL,如果颗粒保持球形,则将以低密度排列。因此,在BNSL自组装过程中合理化两种NC物质的混合无需采用复杂的能量相互作用。我们以一套包装规则总结了我们的分析。这些发现有助于对可变形物体(例如,纳米粒子,胶束,球状蛋白质)结晶期间的熵效应的一般理解,所述可变形物体的形状可使其适应局部配位环境。

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  • 来源
    《Journal of the American Chemical Society》 |2015年第13期|4494-4502|共9页
  • 作者单位

    University of Chicago and James Franck Institute, Chicago, Illinois 60637, United States;

    University of Chicago and James Franck Institute, Chicago, Illinois 60637, 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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