Xiao Chuan, Wang Xin, Zhao Yuming, Zhang Hongwei, Song Junyeob, Vikesland Peter, Qiao Rui, Zhou Wei
Department of Electrical and Computer Engineering, Virginia Tech, Blacksburg, Virginia 24061, United States.
Department of Mechanical Engineering, Virginia Tech, Blacksburg, Virginia 24061, United States.
J Phys Chem C Nanomater Interfaces. 2024 Aug 31;128(36):15103-15116. doi: 10.1021/acs.jpcc.4c04485. eCollection 2024 Sep 12.
Electrokinetic surface-enhanced Raman spectroscopy (EK-SERS) is an emerging high-order analytical technique that combines the plasmonic sensitivity of SERS with the electrode interfacial molecular control of electrokinetics. However, previous EK-SERS works primarily focused on non-Faradaic direct current (DC) operation, limiting the understanding of the underlying mechanisms. Additionally, developing reliable EK-SERS devices with electrically connected plasmonic hotspots remains challenging for achieving high sensitivity and reproducibility in EK-SERS measurements. In this study, we investigated the use of two-tier nanolaminate nano-optoelectrode arrays (NL-NOEAs) for DC and alternating current (AC) EK-SERS measurements of charged analyte molecules in ionic solutions. The NL-NOEAs consist of Au/Ag/Au multilayered plasmonic nanostructures on conductive nanocomposite nanopillar arrays (NC-NPAs). We demonstrate that the NL-NOEAs exhibit high SERS enhancement factors (EFs) of ∼10 and can be used to modulate the concentration and orientation of Rhodamine 6G (R6G) molecules at the electrode surface by applying DC and AC voltages. We also performed numerical simulations to investigate the ion and R6G dynamics near the electrode surface under DC and AC voltage modulation. Our results show that AC EK-SERS can provide additional insights into the dynamics of molecular transport and adsorption processes compared to DC EK-SERS. This study demonstrates the potential of NL-NOEAs for developing high-performance EK-SERS sensors for a wide range of applications.
电动表面增强拉曼光谱(EK-SERS)是一种新兴的高阶分析技术,它将SERS的等离子体敏感性与电动学的电极界面分子控制相结合。然而,以往的EK-SERS研究主要集中在非法拉第直流(DC)操作上,这限制了对其潜在机制的理解。此外,开发具有电连接等离子体热点的可靠EK-SERS器件,对于在EK-SERS测量中实现高灵敏度和可重复性仍然具有挑战性。在本研究中,我们研究了使用双层纳米层压纳米光电极阵列(NL-NOEAs)对离子溶液中带电分析物分子进行直流和交流(AC)EK-SERS测量。NL-NOEAs由导电纳米复合纳米柱阵列(NC-NPAs)上的Au/Ag/Au多层等离子体纳米结构组成。我们证明,NL-NOEAs表现出约10的高SERS增强因子(EFs),并且可以通过施加直流和交流电压来调节罗丹明6G(R6G)分子在电极表面的浓度和取向。我们还进行了数值模拟,以研究直流和交流电压调制下电极表面附近的离子和R6G动力学。我们的结果表明,与直流EK-SERS相比,交流EK-SERS可以为分子传输和吸附过程的动力学提供更多见解。这项研究证明了NL-NOEAs在开发用于广泛应用的高性能EK-SERS传感器方面的潜力。