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Porosity-Controllable Magnetoplasmonic Nanoparticles and Their Assembled Arrays

DOI:10.1039/d0nr01178a 期刊:Nanoscale 出版年份:2020 更新时间:2025-09-23 15:21:01
摘要: Control of the chemical and physical properties of nanoscale colloids and their nanoassemblies remains a challenging issue for enhancing the performance and functionalities of nanodevices. In this study, we report a post-synthesis etching method to tailor the porosity of the Fe3O4 shells coating on Ag NPs, establishing a facile but effective approach to regulate the chemical and optical properties of the colloids and their assembled structures. As the shell porosity increases, the NPs are transformed, producing enhanced catalytic activity and the surface-enhanced Raman spectroscopy (SERS) effect, which results from enhanced chemical diffusion into the Ag core. Magnetoplasmonic (MagPlas) one- (1D) and two- (2D) dimensional arrays fabricated using these porosity-controllable NPs exhibit intriguing plasmon properties that are strongly affected by the porosity of the particle shell. Furthermore, the bright coloration of the 2D arrays is tuned by changing the shell porosity or introducing an additional metallic layer. Such 1D and 2D porous MagPlas metastructures possessing Fe3O4 shells with tunable porosities are a fulcrum for developing recyclable catalysts and tunable optical filters with optimized activity, selectivity, and sensitivity, as well as color displays and sensing platforms.
作者: Van Tan Tran,Dong Kyu Lee,Jeonghyo Kim,Jaewook Lee,Lemma Teshome Tufa,De Pham-Cong,Chang-Seok Kim,Jaebeom Lee
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To develop a post-synthesis etching method to control the porosity of Fe3O4 shells coating on Ag NPs, thereby regulating the chemical and optical properties of the colloids and their assembled structures for enhanced catalytic activity and SERS effect.

The post-synthesis etching method effectively controls the porosity of Fe3O4 shells on Ag NPs, enhancing their catalytic activity and SERS effect. The 1D and 2D arrays of these NPs exhibit tunable plasmon properties and bright coloration, making them promising for applications in recyclable catalysts, optical filters, color displays, and sensing platforms.

The study is limited by the technical constraints of the etching process and the potential for optimization in the fabrication of 1D and 2D arrays. The application of these nanostructures in practical devices may require further development.

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