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电解质中纳米光电极纳米等离激元金属发光的电压调制。

Voltage Modulation of Nanoplasmonic Metal Luminescence from Nano-Optoelectrodes in Electrolytes.

机构信息

Department of Electrical and Computer Engineering, Virginia Tech, Blacksburg, Virginia 24061, United States.

Physical Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, United States.

出版信息

ACS Nano. 2023 May 9;17(9):8634-8645. doi: 10.1021/acsnano.3c01491. Epub 2023 Apr 24.

Abstract

Metallic nanostructures supporting surface plasmon modes can concentrate optical fields and enhance luminescence processes from the metal surface at plasmonic hotspots. Such nanoplasmonic metal luminescence contributes to the spectral background in surface-enhanced Raman spectroscopy (SERS) measurements and is helpful in bioimaging, nanothermometry and chemical reaction monitoring applications. Although there is growing interest in nanoplasmonic metal luminescence, its dependence on voltage modulation has received limited attention in research investigations. Also, the hyphenated electrochemical surface-enhanced Raman spectroscopy (EC-SERS) technique typically ignores voltage-dependent spectral background information associated with nanoplasmonic metal luminescence due to limited mechanistic understanding and poor measurement reproducibility. Here, we report a combined experiment and theory study on dynamic voltage-modulated nanoplasmonic metal luminescence from hotspots at the electrode-electrolyte interface using multiresonant nanolaminate nano-optoelectrode arrays. Our EC-SERS measurements under 785 nm continuous wavelength laser excitation demonstrate that short-wavenumber nanoplasmonic metal luminescence associated with plasmon-enhanced electronic Raman scattering (PE-ERS) exhibits a negative voltage modulation slope (up to ≈30% V) in physiological ionic solutions. Furthermore, we have developed a phenomenological model to intuitively capture the plasmonic, electronic, and ionic characteristics at the metal-electrolyte interface to understand the observed dependence of the PE-ERS voltage modulation slope on voltage polarization and ionic strength. The current work represents a critical step toward the general application of nanoplasmonic metal luminescence signals in optical voltage biosensing, hybrid optical-electrical signal transduction, and interfacial electrochemical monitoring.

摘要

金属纳米结构支持表面等离激元模式,可以在等离激元热点处集中光学场并增强金属表面的发光过程。这种纳米等离激元金属发光有助于表面增强拉曼光谱(SERS)测量中的光谱背景,并有助于生物成像、纳米测温学和化学反应监测应用。尽管人们对纳米等离激元金属发光越来越感兴趣,但在研究调查中,其对电压调制的依赖性受到的关注有限。此外,由于对机制的理解有限和测量重现性差,通常将电化学表面增强拉曼光谱(EC-SERS)技术与纳等离子体金属发光相关的电压相关光谱背景信息忽略。在这里,我们使用多共振纳米层状纳米光电极阵列,报告了关于在电极-电解质界面处热点的动态电压调制纳米等离激元金属发光的实验和理论研究。我们在 785nm 连续波长激光激发下进行的 EC-SERS 测量表明,与等离子体增强电子拉曼散射(PE-ERS)相关的短波长数纳米等离子体金属发光在生理离子溶液中表现出负的电压调制斜率(高达≈30% V)。此外,我们已经开发了一个唯象模型,以直观地捕捉金属-电解质界面处的等离激元、电子和离子特性,以理解观察到的 PE-ERS 电压调制斜率对电压极化和离子强度的依赖性。目前的工作代表了在光学电压生物传感、混合光电信号转换和界面电化学监测中广泛应用纳米等离激元金属发光信号的重要一步。

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