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铁等离子体激元:金属-铁磁纳米粒子中的强局域表面等离激元。

Ferroplasmons: intense localized surface plasmons in metal-ferromagnetic nanoparticles.

机构信息

Department of Materials Science and Engineering, University of Tennessee , Knoxville, Tennessee 37996, United States.

出版信息

ACS Nano. 2014 Oct 28;8(10):9790-8. doi: 10.1021/nn5031719. Epub 2014 Jul 30.

Abstract

Interaction of photons with matter at length scales far below their wavelengths has given rise to many novel phenomena, including localized surface plasmon resonance (LSPR). However, LSPR with narrow bandwidth (BW) is observed only in a select few noble metals, and ferromagnets are not among them. Here, we report the discovery of LSPR in ferromagnetic Co and CoFe alloy (8% Fe) in contact with Ag in the form of bimetallic nanoparticles prepared by pulsed laser dewetting. These plasmons in metal-ferromagnetic nanostructures, or ferroplasmons (FP) for short, are in the visible spectrum with comparable intensity and BW to those of the LSPRs from the Ag regions. This finding was enabled by electron energy-loss mapping across individual nanoparticles in a monochromated scanning transmission electron microscope. The appearance of the FP is likely due to plasmonic interaction between the contacting Ag and Co nanoparticles. Since there is no previous evidence for materials that simultaneously show ferromagnetism and such intense LSPRs, this discovery may lead to the design of improved plasmonic materials and applications. It also demonstrates that materials with interesting plasmonic properties can be synthesized using bimetallic nanostructures in contact with each other.

摘要

在远小于其波长的长度尺度上,光子与物质的相互作用产生了许多新现象,包括局域表面等离子体共振(LSPR)。然而,只有在少数几种贵金属中才能观察到具有较窄带宽(BW)的 LSPR,而铁磁体则不在其中。在这里,我们报告了在以通过脉冲激光去湿法制备的双金属纳米粒子形式与 Ag 接触的 Co 和 CoFe 合金(8% Fe)中发现的 LSPR。这些金属-铁磁体纳米结构中的等离子体,或简称铁等离子体(FP),位于可见光谱中,其强度和 BW 与 Ag 区域的 LSPR 相当。这一发现是通过在单色扫描透射电子显微镜中对单个纳米粒子进行电子能量损失映射实现的。FP 的出现可能是由于接触的 Ag 和 Co 纳米粒子之间的等离子体相互作用。由于没有先前关于同时显示铁磁性和如此强烈的 LSPR 的材料的证据,这一发现可能会导致改进的等离子体材料和应用的设计。它还表明,可以使用相互接触的双金属纳米结构来合成具有有趣等离子体性质的材料。

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