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Visualizing Charge Transport and Nanoscale Electrochemistry by Hyperspectral Kelvin Probe Force Microscopy

机译:通过高光谱开尔文探针力显微镜可视化电荷传输和纳米级电化学

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摘要

Charge-transport and electrochemical processes are heavily influenced by the local microstructure. Kelvin probe force microscopy (KPFM) is a widely used technique to map electrochemical potentials at the nanometer scale; however, it offers little information on local charge dynamics. Here, we implement a hyperspectral KPFM approach for spatially mapping bias-dependent charge dynamics in timescales ranging from the sub-millisecond to the second regime. As a proof of principle, we investigate the role mobile surface charges play in a three-unit-cell LaAlO3/SrTiO3 oxide heterostructure. We explore machine learning approaches to assist with visualization, pattern recognition, and interpretation of the information-rich data sets. Linear unmixing methods reveal hidden bias-dependent interfacial processes, most likely water splitting, which are essentially unnoticed by functional fitting of the dynamic response alone. Hyperspectral KPFM will be beneficial for investigating nanoscale charge transport and local reactivity in systems involving a possible combination of electronic, ionic, and electrochemical phenomena.
机译:电荷运输和电化学过程受到局部微观结构的严重影响。 Kelvin探针力显微镜(KPFM)是一种广泛使用的技术,用于在纳米级上映射电化学电位;但是,它提供有关本地充电动态的信息。在这里,我们实现了在从子毫秒到第二种制度的时间尺寸范围内的空间映射偏置偏置的电荷动态的高光谱KPFM方法。作为原理的证据,我们研究了在三单元 - 细胞Laalo3 / Srtio3氧化物异质结构中发挥的角色流动表面收费。我们探索机器学习方法,以协助可视化,模式识别和解释信息丰富的数据集。线性解密方法揭示了隐藏的偏置依赖性界面过程,最可能的水分裂,其基本上被单独的动态响应的功能拟合所忽视。高光谱KPFM将有利于研究涉及电子,离子和电化学现象的可能组合的系统中的纳米级电荷运输和局部反应性。

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