Electron energy loss spectroscopic investigation of Mie resonances in bimetallic nanostructures

IF 3.8 Q2 CHEMISTRY, PHYSICAL Chemical Physics Impact Pub Date : 2024-07-06 DOI:10.1016/j.chphi.2024.100677
Subham Kumar Saha , Pritha Mondal , Samartha A. Channagiri , Rekha Mahadevu , Navyashree Vasudeva , Pavithra Bellare , N. Ravishankar , Anshu Pandey
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Abstract

Bimetallic nanostructures can exhibit significant broadening of Mie resonances compared to monometallic nanoparticles. Here, we study these materials using Electron Energy Loss Spectroscopy at a single particle level. This technique is immensely effective to probe direct structure-property correlation of nanoparticles. We are thus able to confirm the broadening of Mie resonances at a single particle level. This effect is analyzed in the context of emergence of a new dielectric constant that originates from metallic interfaces. We employ Coronado-Schatz corrections to the usual dielectric constants of the constituent metals to quantitatively simulate these materials. The resultant materials thus exhibit optical cross-sections that are 38.5 % and 4.2 % of the gold and silver nanoparticle optical cross-section at 2.5 eV and 3.45 eV, respectively. A strong agreement between theory and experiment is observed. We also confirmed the effectiveness of our approach for nanoparticles with different morphologies as well as different compositional ratios. Our study suggests an effective strategy to regulate the dielectric properties of bimetallic nanostructures through interface engineering.

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双金属纳米结构中米氏共振的电子能量损失光谱研究
与单金属纳米粒子相比,双金属纳米结构能显著拓宽米氏共振。在这里,我们使用电子能量损失光谱法在单颗粒水平上研究这些材料。这种技术对探测纳米粒子的直接结构-性能相关性非常有效。因此,我们能够在单颗粒水平上证实米氏共振的拓宽。我们从金属界面产生的新介电常数的角度分析了这种效应。我们采用 Coronado-Schatz 修正法对组成金属的常规介电常数进行定量模拟。因此,这些材料在 2.5 eV 和 3.45 eV 时的光学截面分别是金纳米粒子和银纳米粒子光学截面的 38.5% 和 4.2%。理论与实验之间存在很强的一致性。我们还证实了我们的方法对不同形态和不同成分比例的纳米粒子的有效性。我们的研究提出了一种通过界面工程调节双金属纳米结构介电性能的有效策略。
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来源期刊
Chemical Physics Impact
Chemical Physics Impact Materials Science-Materials Science (miscellaneous)
CiteScore
2.60
自引率
0.00%
发文量
65
审稿时长
46 days
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