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In-Operando characterization of Electrochemical Interfaces Via Shiners: Shell-Isolated Nanoparticle Enhanced Raman Spectroscopy

机译:通过闪存的电化学界面的On-Ormando表征:壳体分离的纳米颗粒增强拉曼光谱

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The advent of SERS created a new avenue for investigating interfacial phenomena by coupling the localized surface plasmon resonance (LSPR) of metal nanostructures to the inelastic scattering properties of molecules. Seeing a 10~4-fold enhancement in Raman signals, SERS scattering events were used to identify adsorbed molecules and substrate-surface structural conformations. But, even with the advent of SERs, Raman spectroscopy was still confined to LSPR active materials with roughened surfaces. However, recent technical modifications to SERS, such as shell-isolation and localized probe modes, have shown potential for the in-operando investigation of flat non-plasmon active single-crystal surfaces. Shell-isolated Nanoparticle Enhanced Raman Spectroscopy (SHINERS) provides two parallel paths for electric field enhancement of non-plasmon active surfaces while minimizing chemical perturbations by encasing reporters in a chemically inert shell (Figure 1). This technique can be used to perform in-operando measurements during electrochemical processes to bridge the gap between observing and understanding the state of metallic interfaces under an applied bias. This serve as a great utility to not only understand surface adsorbates, but to also characterize dynamic surfaces (e.g. Cu) that undergo reconstruction in response to the applied biases. Such metastable surfaces can impede capturing surface structure information, preventing accurate structure-activity assignments necessary to further understanding of the system. Furthermore, a lack of in-operando technology has inhibited the characterization of active sites and surface phenomena via in-situ measurements. These limitations have resulted in uncertainty of how novel findings are interconnected and ways to design refined interfaces. Herein, I report the synthesis of SiO_2 encapsulated Au NPs and their application in-operando to track the state of Cu interfaces under varying electrochemical and chemical conditions.
机译:SERS的出现创造了一种新的途径,用于通过将金属纳米结构的局部表面等离子体共振(LSPR)与分子的非弹性散射性能偶联来研究界面现象。在拉曼信号中看到10〜4倍的增强,SERS散射事件用于鉴定吸附的分子和基材表面结构构象。但是,即使随着SERS的出现,拉曼光谱仍然限于LSPR活性材料,具有粗糙的表面。然而,最近对SERS的技术修改,例如壳隔离和局部探针模式,已经示出了扁平非等离子体有源单晶表面的On-Outmando调查的可能性。壳体隔离的纳米粒子增强拉曼光谱(闪络)提供了两种平行路径,用于非等离子体活性表面的电场增强,同时通过在化学惰性壳中加上记者来最小化化学扰动(图1)。该技术可用于在电化学过程期间执行Outmando测量,以弥合观察和理解施加的偏差下的金属界面状态之间的间隙。这用作不仅了解表面吸附物的效用,而且还用于表征经历重建的动态表面(例如Cu)以响应所施加的偏差。这种稳定性表面可以妨碍捕获表面结构信息,防止进一步理解系统所需的准确结构活动分配。此外,缺乏Op-Outmando技术通过原位测量抑制了活性位点和表面现象的表征。这些限制导致新发现如何互连的不确定性以及设计精制接口的方式。在此,我报告了SiO_2包封的Au nps的合成及其在-uporando中的应用,以跟踪不同电化学和化学条件下的Cu界面的状态。

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