Chiral assemblies of pinwheel superlattices on substrates

被引:0
作者
Shan Zhou
Jiahui Li
Jun Lu
Haihua Liu
Ji-Young Kim
Ahyoung Kim
Lehan Yao
Chang Liu
Chang Qian
Zachary D. Hood
Xiaoying Lin
Wenxiang Chen
Thomas E. Gage
Ilke Arslan
Alex Travesset
Kai Sun
Nicholas A. Kotov
Qian Chen
机构
[1] University of Illinois at Urbana-Champaign,Department of Materials Science and Engineering
[2] University of Illinois at Urbana-Champaign,Materials Research Laboratory
[3] University of Michigan,Department of Chemical Engineering
[4] University of Michigan,Biointerfaces Institute
[5] Argonne National Laboratory,Center for Nanoscale Materials
[6] Argonne National Laboratory,Applied Materials Division
[7] Iowa State University and Ames Lab,Department of Physics and Astronomy
[8] Iowa State University and Ames Lab,Department of Materials Science and Engineering
[9] University of Michigan,Department of Physics
[10] University of Michigan,Department of Materials Science and Engineering
[11] University of Illinois at Urbana-Champaign,Beckman Institute for Advanced Science and Technology
[12] University of Illinois at Urbana-Champaign,Department of Chemistry
来源
Nature | 2022年 / 612卷
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摘要
The unique topology and physics of chiral superlattices make their self-assembly from nanoparticles highly sought after yet challenging in regard to (meta)materials1–3. Here we show that tetrahedral gold nanoparticles can transform from a perovskite-like, low-density phase with corner-to-corner connections into pinwheel assemblies with corner-to-edge connections and denser packing. Whereas corner-sharing assemblies are achiral, pinwheel superlattices become strongly mirror asymmetric on solid substrates as demonstrated by chirality measures. Liquid-phase transmission electron microscopy and computational models show that van der Waals and electrostatic interactions between nanoparticles control thermodynamic equilibrium. Variable corner-to-edge connections among tetrahedra enable fine-tuning of chirality. The domains of the bilayer superlattices show strong chiroptical activity as identified by photon-induced near-field electron microscopy and finite-difference time-domain simulations. The simplicity and versatility of substrate-supported chiral superlattices facilitate the manufacture of metastructured coatings with unusual optical, mechanical and electronic characteristics.
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页码:259 / 265
页数:6
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