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Digital Alchemy for Materials Design: Colloids and Beyond

机译:材料设计的数字炼金术:胶体及其他

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Starting with the early alchemists, a holy grail of science has been to make desired materials by modifying the attributes of basic building blocks. Building blocks that show promise for assembling new complex materials can be synthesized at the nanoscale with attributes that would astonish the ancient alchemists in their versatility. However, this versatility means that making a direct connection between building-block attributes and bulk structure is both necessary for rationally engineering materials and difficult because building block attributes can be altered in many ways. Here we show how to exploit the malleability of the valence of colloidal nanoparticle "elements" to directly and quantitatively link building-block attributes to bulk structure through a statistical thermodynamic framework we term "digital alchemy". We use this framework to optimize building blocks for a given target structure and to determine which building-block attributes are most important to control for self-assembly, through a set of novel thermodynamic response functions, moduli, and susceptibilities. We thereby establish direct links between the attributes of colloidal building blocks and the bulk structures they form. Moreover, our results give concrete solutions to the more general conceptual challenge of optimizing emergent behaviors in nature and can be applied to other types of matter. As examples, we apply digital alchemy to systems of truncated tetrahedra, rhombic dodecahedra, and isotropically interacting spheres that self-assemble diamond, fcc, and icosahedral quasicrystal structures, respectively. Although our focus is on colloidal systems, our methods generalize to any building blocks with adjustable interactions.
机译:从早期的炼金术士开始,科学的圣杯一直是通过修改基本构件的属性来制造所需的材料。可以在纳米级上合成具有组装新的复杂材料前景的构造块,其属性将使古代炼金术士的多功能性令人惊讶。但是,这种多功能性意味着,要合理地设计材料,必须在积木属性和块结构之间建立直接联系,这既困难又困难,因为积木属性可以通过多种方式进行更改。在这里,我们展示了如何利用胶体纳米颗粒“元素”的化合价,通过统计数字热力学框架(我们称之为“数字炼金术”),直接且定量地将构建基块属性链接到本体结构。我们使用此框架来优化给定目标结构的构造块,并通过一组新颖的热力学响应函数,模量和磁化率来确定哪些构造块属性对于控制自组装最重要。因此,我们在胶体构建基块的属性与其形成的本体结构之间建立了直接联系。此外,我们的结果为优化自然界中的紧急行为提供了更一般的概念挑战的具体解决方案,并且可以应用于其他类型的物质。例如,我们将数字炼金术应用于截短的四面体,菱形十二面体和各向同性相互作用的球体系统,这些球体分别自组装金刚石,fcc和二十面体准晶体结构。尽管我们的重点是胶体系统,但我们的方法可以推广到相互作用可调的任何构造块。

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