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Walking the Walk: A Giant Step toward Sustainable Plasmonics

机译:步行:迈向可持续等离子技术的巨大一步

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The use of earth-abundant materials is at the frontier of nanoplasmonics research, where their availability and low cost can enable practical mainstream applications and commercial viability. Aluminum is of specific interest in this regard, due to its ability to support plasmon resonances throughout the ultraviolet (UV), visible, and infrared regions of the spectrum. However, the lack of accurate dielectric data has critically limited the agreement between theoretical predictions and experimental measurements of the optical properties of AI nanostructures compared, for example, to the agreement enjoyed by the noble/coinage metals. As reported in this issue of ACS Nano, efforts by Cheng et al. to determine the dielectric function of pristine Al show that Al has substantially lower loss than was indicated by previously reported dielectric data for AI, including a 2-fold lower loss for the UV region compared to that in previous studies. These results provide data that are essential for accurate agreement between theory and experiment for Al plasmonic nanostructures, placing this earth-abundant metal on sound footing as a new and highly promising material for sustainable plasmonics by design.
机译:富含地球的材料的使用是纳米等离子体技术研究的前沿,在那里,它们的可用性和低成本可以实现实际的主流应用和商业可行性。在这方面,铝具有特别的意义,因为铝能够在整个光谱的紫外线(UV),可见光和红外线区域内支持等离子体共振。然而,缺乏准确的介电数据严重限制了AI纳米结构的光学特性的理论预测和实验测量之间的一致性,例如,与贵金属/硬币金属所享有的一致性相比。正如本期ACS Nano所报道的那样,Cheng等人所做的努力。确定原始Al的介电功能表明,Al具有比以前报道的AI介电数据低得多的损耗,与以前的研究相比,其中UV区域的损耗低2倍。这些结果提供了对于Al等离子体纳米结构的理论与实验之间准确吻合必不可少的数据,使这种富含地球的金属在设计上成为了可持续等离子体的一种新型且极有希望的材料。

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