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通过增强In-Pt双层膜的固态去湿改善铂纳米颗粒的构型和局域表面等离子体共振响应

Improved Configuration and LSPR Response of Platinum Nanoparticles via Enhanced Solid State Dewetting of In-Pt Bilayers.

作者信息

Kunwar Sundar, Sui Mao, Pandey Puran, Gu Zenan, Pandit Sanchaya, Lee Jihoon

机构信息

Department of Electronic Engineering, College of Electronics and Information, Kwangwoon University, Nowon-gu Seoul, 01897, South Korea.

出版信息

Sci Rep. 2019 Feb 4;9(1):1329. doi: 10.1038/s41598-018-37849-0.

Abstract

Noble metallic nanoparticles (NPs) can exhibit valuable properties such as localized surface plasmon resonance (LSPR) and large surface to volume ratio, which can find various optoelectronic and catalytic applications. In this work, the improved configuration and uniformity of platinum (Pt) NPs are demonstrated by using a sacrificial indium (In) layer via the enhanced solid state dewetting of In-Pt bilayers on sapphire (0001). In a sharp contrast to the conventional dewetting of intrinsic Pt film, the introduction of In component can significantly enhance the global dewetting process and thus can result in the fabrication of well-defined Pt NPs with the improved uniformity. This can be due to the fact that In possess high diffusivity, low surface energy and low sublimation temperature. Upon annealing, the intermixing of In and Pt atoms can occur at the interface due to the inter-diffusion, which forms In-Pt alloy system. As a result, the overall diffusivity and dewetting degree of system can be significantly improved and this can produce more isolated, uniform and semispherical Pt NPs at much lower temperatures as compared to the pure Pt film dewetting. Conveniently, the In atoms preferentially can be removed from the NP matrix by the sublimation even at relatively low temperatures. These Pt NPs exhibit dynamic LSPR band in the UV-visible wavelength based on the excitation of dipolar, quadrupolar and higher order resonance modes. Specifically, the LSPR wavelength can be tuned between ~480 and 580 nm by the fabrication of small to large size Pt NPs with the distinct configuration and interparticle spacing. Furthermore, at a constant Pt thickness, the size, spacing and density of Pt NPs can be readily tuned by the control of In layer thickness. The introduction of sacrificial In component can enable an additional flexibility for the control of surface morphologies of metallic NPs with the low diffusivity materials.

摘要

贵金属纳米颗粒(NPs)具有诸如局域表面等离子体共振(LSPR)和大的表面积与体积比等有价值的特性,可用于各种光电和催化应用。在这项工作中,通过在蓝宝石(0001)上利用牺牲铟(In)层对In-Pt双层膜进行增强的固态去湿,展示了铂(Pt)纳米颗粒改进的结构和均匀性。与本征Pt膜的传统去湿形成鲜明对比的是,In组分的引入可显著增强整体去湿过程,从而能够制造出具有改进均匀性的形状明确的Pt纳米颗粒。这可能是因为In具有高扩散率、低表面能和低升华温度。退火时,由于相互扩散,In和Pt原子在界面处会发生混合,形成In-Pt合金体系。结果,体系的整体扩散率和去湿程度可得到显著提高,与纯Pt膜去湿相比,这可以在更低的温度下产生更多孤立、均匀且呈半球形的Pt纳米颗粒。方便的是,即使在相对较低的温度下,In原子也可通过升华优先从NP基质中去除。基于偶极、四极和高阶共振模式的激发,这些Pt纳米颗粒在紫外-可见波长范围内表现出动态LSPR带。具体而言,通过制造具有不同结构和颗粒间距的从小尺寸到大尺寸的Pt纳米颗粒,LSPR波长可在约480至580nm之间调节。此外,在Pt厚度恒定的情况下,通过控制In层厚度可以很容易地调节Pt纳米颗粒的尺寸、间距和密度。牺牲In组分的引入可为用低扩散率材料控制金属纳米颗粒的表面形貌提供额外的灵活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d4a5/6362192/fee9ef2159df/41598_2018_37849_Fig1_HTML.jpg

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