Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/184427
Title: Curvature-guided depletion stabilizes Kagome superlattices of nanocrystals
Authors: Wan, Siyu
Xia, Xiuyang
Gao, Yutong
Zhang, Heyang
Zhang, Zhebin
Wu, Fangyue
Wu, Xuesong
Yang, Dong
Li, Tongtao
Li, Jianfeng
Ni, Ran
Dong, Angang
Keywords: Chemistry
Issue Date: 2025
Source: Wan, S., Xia, X., Gao, Y., Zhang, H., Zhang, Z., Wu, F., Wu, X., Yang, D., Li, T., Li, J., Ni, R. & Dong, A. (2025). Curvature-guided depletion stabilizes Kagome superlattices of nanocrystals. Science, 387(6737), 978-984. https://dx.doi.org/10.1126/science.adu4125
Project: NRF-CRP29-2022-0002 
MOE2019-T2-2-010 
RG151/23 
Journal: Science
Abstract: Shape-anisotropic nanocrystals and patchy particles have been explored to construct complex superstructures, but most studies have focused on convex shapes. We report that nonconvex, dumbbell-shaped nanocrystals (nanodumbbells) exhibit globally interlocking self-assembly behaviors governed by curvature-guided depletion interactions. By tailoring the local curvature of nanodumbbells, we can precisely and flexibly adjust particle bonding directionality, a level of control rarely achievable with conventional convex building blocks. These nanodumbbells can undergo long-range ordered assembly into various intricate two-dimensional superlattices, including the chiral Kagome lattice. Theoretical calculations reveal that the Kagome lattice is a thermodynamically stable phase, with depletion interactions playing a crucial role in stabilizing these non-close-packed structures. The emergence of Kagome lattices and other unusual structures highlights the vast potential of nonconvex nanocrystals for creating sophisticated architectures.
URI: https://hdl.handle.net/10356/184427
ISSN: 0036-8075
DOI: 10.1126/science.adu4125
Schools: School of Chemistry, Chemical Engineering and Biotechnology 
Rights: © 2025 the authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original US government works. https://www.sciencemag.org/about/science-licenses-journal-article-reuse.
Fulltext Permission: none
Fulltext Availability: No Fulltext
Appears in Collections:CCEB Journal Articles

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