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将多个多面体等离子体纳米框架嵌套到一个单一实体中。

Nesting of multiple polyhedral plasmonic nanoframes into a single entity.

作者信息

Yoo Sungjae, Lee Jaewon, Hilal Hajir, Jung Insub, Park Woongkyu, Lee Joong Wook, Choi Soobong, Park Sungho

机构信息

Research Institute for Nano Bio Convergence, Sungkyunkwan University, Suwon, 16419, Republic of Korea.

Department of Chemistry, Sungkyunkwan University, Suwon, 16419, Republic of Korea.

出版信息

Nat Commun. 2022 Aug 4;13(1):4544. doi: 10.1038/s41467-022-32261-9.

Abstract

The development of plasmonic nanostructures with intricate nanoframe morphologies has attracted considerable interest for improving catalytic and optical properties. However, arranging multiple nanoframes in one nanostructure especially, in a solution phase remains a great challenge. Herein, we show complex nanoparticles by embedding various shapes of three-dimensional polyhedral nanoframes within a single entity through rationally designed synthetic pathways. This synthetic strategy is based on the selective deposition of platinum atoms on high surface energy facets and subsequent growth into solid platonic nanoparticles, followed by the etching of inner Au domains, leaving complex nanoframes. Our synthetic routes are rationally designed and executable on-demand with a high structural controllability. Diverse Au solid nanostructures (octahedra, truncated octahedra, cuboctahedra, and cubes) evolved into complex multi-layered nanoframes with different numbers/shapes/sizes of internal nanoframes. After coating the surface of the nanoframes with plasmonically active metal (like Ag), the materials exhibited highly enhanced electromagnetic near-field focusing embedded within the internal complicated rim architecture.

摘要

具有复杂纳米框架形态的等离子体纳米结构的发展,因其能改善催化和光学性能而备受关注。然而,将多个纳米框架排列在一个纳米结构中,尤其是在溶液相中,仍然是一个巨大的挑战。在此,我们通过合理设计的合成途径,在单个实体中嵌入各种形状的三维多面体纳米框架,展示了复杂的纳米颗粒。这种合成策略基于铂原子在高表面能晶面上的选择性沉积,随后生长成固态柏拉图式纳米颗粒,接着蚀刻内部的金域,留下复杂的纳米框架。我们的合成路线经过合理设计,可按需执行,具有高度的结构可控性。多种金固体纳米结构(八面体、截角八面体、立方八面体和立方体)演变成具有不同数量/形状/尺寸内部纳米框架的复杂多层纳米框架。在用等离子体活性金属(如银)涂覆纳米框架表面后,这些材料在内部复杂的边缘结构中展现出高度增强的电磁近场聚焦。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b194/9352762/3d09dfccf6c3/41467_2022_32261_Fig1_HTML.jpg

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