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Hetero-oligomer Nanoparticle Arrays for Plasmon-Enhanced Hydrogen Sensing

机译:异质低聚物纳米粒子阵列用于等离子体增强氢感测

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This paper describes how the ability to tune each nanoparticle in a plasmonic hetero-oligomer can optimize architectures for plasmon-enhanced applications. We demonstrate how a large-area nanofabrication approach, reconstructable mask lithography (RML), can achieve independent control over the size, position, and material of up to four nanoparticles within a subwavelength unit. We show how arrays of plasmonic heterooligomers consisting of strong plasmonic materials (Au) and reactant-specific elements (Pd) provide a unique platform for enhanced hydrogen gas sensing. Using finite-difference time-domain simulations, we modeled different configurations of Au-Pd hetero-oligomers and compared their hydrogen gas sensing capabilities. In agreement with calculations, we found that Au-Pd nanoparticle dimers showed a red-shift and that Au-Pd trimers with touching Au and Pd nanoparticles showed a blue-shift upon exposure to both high and low concentrations of hydrogen gas. Both Au-Pd hetero-oligomer sensors displayed high sensitivity, fast response times, and excellent recovery.
机译:本文描述了在等离激元杂化低聚物中调节每个纳米粒子的能力如何优化等离激元增强应用的体系结构。我们演示了大面积纳米制造方法,可重构掩模光刻(RML)如何在亚波长单位内实现对多达四个纳米粒子的大小,位置和材料的独立控制。我们展示了由强等离激元材料(Au)和特定于反应物的元素(Pd)组成的等离激元杂聚物的阵列如何提供增强氢气感测的独特平台。使用有限差分时域仿真,我们对Au-Pd杂聚物的不同构型进行了建模,并比较了它们的氢气感测能力。与计算结果一致,我们发现Au-Pd纳米颗粒二聚体显示出红移,而与Au和Pd纳米颗粒接触的Au-Pd三聚体在暴露于高浓度和低浓度的氢气下均显示出蓝移。两种Au-Pd异质低聚物传感器均显示出高灵敏度,快速响应时间和出色的回收率。

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