Elucidating the interplay between entropy-driven and patch-mediated bonding in directing nanoscale assemblies†

IF 3.2 3区 工程技术 Q2 CHEMISTRY, PHYSICAL
Kireeti Akkunuri, Xiangyu Zhang and Thi Vo
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引用次数: 0

Abstract

Selective nanoparticle surface patterning presents incredible promise for broadening programmable materials design into a space beyond “close-packed” morphologies. These “patchy” particles impose directional attractions between neighbors that favor the formation of low-coordination, open structures previously inaccessible via their isotropically interacting nanoparticle counterparts. However, unlike patchy colloids, patches on nanoparticles are highly deformable, presenting challenges for their predictive design. Here, we present a multi-faceted approach combining theory and simulation to investigate the underlying forces governing interactions between nanoparticles with flexible patches. We first develop a thermodynamic perturbation theory to fundamentally capture the interplay between patch–patch merging and directional entropic forces in controlling particle organization. We then employ theoretical insights to explicitly consider how monomer geometry synergizes with monomer connectivity in sculpting the equilibrium morphologies for polymeric chains composed of anisotropic monomeric subunits. Theory predictions are then validated using simulations, with excellent agreement across both local and global length scales. Combined, our findings indicate that a large suite of orientational and structural diversity can be attained via precision engineering of how patch–patch and entropic forces between the anisotropic nanoparticles counterbalance each other. These findings on nanoscale patchy interactions offer newer avenues for directing the assembly process of novel polymeric and metamaterials.

Abstract Image

阐明熵驱动键和贴片介导键在定向纳米级组装中的相互作用
选择性纳米颗粒表面图案为将可编程材料设计扩展到“紧密堆积”形态之外的空间提供了令人难以置信的希望。这些“斑块状”粒子在相邻粒子之间施加定向吸引力,有利于形成低配位、开放的结构,这些结构以前是通过它们的各向同性相互作用的纳米粒子对应物无法达到的。然而,与片状胶体不同,纳米颗粒上的斑块具有高度可变形性,这对其预测设计提出了挑战。在这里,我们提出了一种多方面的方法,结合理论和模拟来研究具有柔性斑块的纳米颗粒之间相互作用的潜在力量。我们首先发展了一个热力学摄动理论,从根本上捕获了在控制粒子组织中补丁-补丁合并和方向熵力之间的相互作用。然后,我们运用理论见解来明确考虑单体几何形状如何与单体连通性协同作用,以塑造由各向异性单体亚基组成的聚合物链的平衡形态。然后使用模拟验证理论预测,在局部和全球长度尺度上都具有出色的一致性。综上所述,我们的研究结果表明,通过对各向异性纳米颗粒之间的贴片力和熵力相互平衡的精密工程,可以获得大量的取向和结构多样性。这些关于纳米尺度斑块相互作用的发现为指导新型聚合物和超材料的组装过程提供了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Systems Design & Engineering
Molecular Systems Design & Engineering Engineering-Biomedical Engineering
CiteScore
6.40
自引率
2.80%
发文量
144
期刊介绍: Molecular Systems Design & Engineering provides a hub for cutting-edge research into how understanding of molecular properties, behaviour and interactions can be used to design and assemble better materials, systems, and processes to achieve specific functions. These may have applications of technological significance and help address global challenges.
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