论文标题

在铜氧化物颗粒中调整MIE共振作为纳米ant。

Tailoring Mie Resonances in Cupric Oxide Particles for Use as Nanoantennas

论文作者

Ramakrishnan, Sundaram Bhardwaj, Tirumala, Ravi Teja Addanki, Mohammadparast, Farshid, Arumugam, Swetha M., Andiappan, Marimuthu

论文摘要

纳米晶状体的领域已随着等离子金属而生长。金属(例如银,金和铜纳米颗粒)可以在纳米级的电磁(EM)磁场上集中,这是由于特殊特性称为局部表面等离子体共振(LSPR)。这为广泛的应用奠定了基础,包括纳米级光学,太阳能收集,光催化和生物传感。但是,存在与等离子金属相关的固有问题,例如高加热损耗,无法像半导体制造过程那样扩大其扩展。此外,该场的增强仅限于电场。这些共同抑制了在实际应用中更广泛使用PMN的方法。在这项工作中,我们报告了具有中等折射指数的亚微米氧化铜(CUO)颗粒,该颗粒可以表现出强烈的电气和磁性miE共振,具有强烈的灭绝/散射横截面,可与等离激元对应物的散射相当。通过开发具有强形状和尺寸控制,光谱和有限差分时间域模拟的粒子合成技术,我们表明MIE共振峰波长是尺寸和形状依赖性的。这使可见的可调性可调到近红外区域,以收集更大的太阳光谱。因此,亚微米CUO颗粒在成为PMN的高性能替代品中具有强大的潜力。强的电和磁性MIE共声介导的纳米annna效应归因于CUO颗粒可以可能用于多种应用中,包括表面 - 源性拉曼光谱,分离,光催化和光伏电源。

The field of nano-optics has grown with plasmonic metals. Metals such as silver, gold, and copper nanoparticles, can concentrate electromagnetic (EM) fields at the nanoscale, due to the special property called localized surface plasmon resonance (LSPR). This laid the foundation for a wide range of applications, including nanoscale optics, solar energy harvesting, photocatalysis, and biosensing. However, there are inherent problems associated with plasmonic metals, such as high heating losses, and their inability to be scaled-up like semiconductor fabrication processes. In addition, the field enhancement is restricted only to electric fields. All together these inhibit the broader use of PMNs in practical applications. In this work, we report submicron cupric oxide (CuO) particles with a medium refractive index that can exhibit strong electric and magnetic Mie resonances with strong extinction/scattering cross-sections comparable to or slightly exceeding those of their plasmonic counterparts. Through the development of particle synthesis techniques with strong shape and size control, optical spectroscopy, and finite-difference-time-domain simulations we show that the Mie resonance peak wavelengths are size- and shape-dependent. This gives tunability in the visible to near-infrared regions for harvesting a wider fraction of the solar spectrum. Therefore, submicron CuO particles exhibit strong potential in emerging as high-performance alternatives to PMNs. The strong electric and magnetic Mie-resonance-mediated nanoantenna effect attribute that CuO particles can be potentially used in a plethora of applications, including surface-enhance Raman spectroscopy, metamaterials, photocatalysis, and photovoltaics.

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