概括性
纳米颗粒
曲率
图形
纳米技术
等离子纳米粒子
计算机科学
解码方法
图论
统计物理学
材料科学
分子动力学
锡
分子
等离子体子
拓扑(电路)
理论计算机科学
氧化铟锡
比例(比率)
计算复杂性理论
多尺度建模
铟
生物系统
订单(交换)
集体行为
算法
物理
纳米线
氧化物
作者
Jonas Hallstrom,Puquan Pan,Jayson Sia,Sangwok Bae,Dingwen Qian,Qian Chang,Sindy Liu,Lehan Yao,Thomas M. Truskett,Delia J. Milliron,Qian Chen,Xiaoming Mao,Paul Bogdan,Nicholas A. Kotov
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-05-14
卷期号:392 (6799): eaeb5134-eaeb5134
标识
DOI:10.1126/science.aeb5134
摘要
Being intermediate in scale between molecules and colloids, nanoparticles combine characteristics of both. The structure of their self-assembled states combining order and disorder is difficult to quantify using traditional symmetry-based descriptors. Here, we applied graph theory (GT) to analyze assemblies of 400 to 10,000 nanoparticles across three material systems. We show that GT metrics, augmented Forman-Ricci curvature (AFRC) and Ollivier-Ricci curvature (ORC), capture local and global structural transitions from small clusters to extended networks. AFRC reflects the energetic state of the assembly, whereas ORC quantifies structural complexity and reveals a "Goldilocks" regime that maximizes plasmonic response. The generality of this approach is demonstrated for gold nanocubes, gold nanoprisms, and indium tin oxide nanospheres, providing a unified framework for describing and optimizing complex nanoparticle assemblies.
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