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具有可调圆二色性和增强传感性能的手性石墨烯等离子体阿基米德螺旋纳米结构

Chiral graphene plasmonic Archimedes' spiral nanostructure with tunable circular dichroism and enhanced sensing performance.

作者信息

Zhou Hengjie, Su Shaojian, Ma Huanxi, Zhao Zeyang, Lin Zhili, Qiu Weibin, Qiu Pingping, Huang Beiju, Kan Qiang

出版信息

Opt Express. 2020 Oct 12;28(21):31954-31966. doi: 10.1364/OE.403041.

Abstract

Circular dichroism spectroscopy is frequently used to characterize the chiral biomolecules by measuring the absorption spectra contrast between the left-handed circularly polarized light and the right-handed circularly polarized light. Compared with biomolecules, chiral metal plasmonic nanostructures also produce a strong circular dichroism response in the range of near-infrared. However, due to the large damping rate, the non-adjustable resonant frequency of the conventional metals, the applications of chiral metal plasmonic nanostructures in the fields of photoelectric detection and chemical and biochemical sensing are restricted. Here, we present a chiral graphene plasmonic Archimedes' spiral nanostructure that displays a significant circular dichroism response under the excitation of two polarizations of circularly polarized light. By manipulating the material and geometric parameters of the Archimedes' spiral, the stronger circular dichroism responses and modulation of the resonant wavelength are achieved. The optimized plasmonic nanostructure has outstanding refractive index sensing performance, where the sensitivity and figure of merit reach 7000nm/RIU and 68.75, respectively. Our proposed chiral graphene plasmonic Archimedes' spiral nanostructure might find potential applications in the fields of optical detection and high performance of index sensing.

摘要

圆二色光谱法经常用于通过测量左旋圆偏振光和右旋圆偏振光之间的吸收光谱对比度来表征手性生物分子。与生物分子相比,手性金属等离子体纳米结构在近红外范围内也会产生强烈的圆二色性响应。然而,由于传统金属的阻尼率大、共振频率不可调,手性金属等离子体纳米结构在光电检测以及化学和生化传感领域的应用受到限制。在此,我们展示了一种手性石墨烯等离子体阿基米德螺旋纳米结构,该结构在圆偏振光的两种偏振激发下表现出显著的圆二色性响应。通过操纵阿基米德螺旋的材料和几何参数,实现了更强的圆二色性响应和谐振波长的调制。优化后的等离子体纳米结构具有出色的折射率传感性能,其灵敏度和品质因数分别达到7000nm/RIU和68.75。我们提出的手性石墨烯等离子体阿基米德螺旋纳米结构可能在光学检测和高性能折射率传感领域找到潜在应用。

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