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Towards nanoscale electrical measurements in liquid by advanced KPFM techniques: a review

机译:通过先进的KPFM技术向纳米级电气测量迈进:综述

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摘要

Fundamental mechanisms of energy storage, corrosion, sensing, and multiple biological functionalities are directly coupled to electrical processes and ionic dynamics at solid-liquid interfaces. In many cases, these processes are spatially inhomogeneous taking place at grain boundaries, step edges, point defects, ion channels, etc and possess complex time and voltage dependent dynamics. This necessitates time-resolved and real-space probing of these phenomena. In this review, we discuss the applications of force-sensitive voltage modulated scanning probe microscopy (SPM) for probing electrical phenomena at solid-liquid interfaces. We first describe the working principles behind electrostatic and Kelvin probe force microscopies (EFM & KPFM) at the gas-solid interface, review the state of the art in advanced KPFM methods and developments to (i) overcome limitations of classical KPFM, (ii) expand the information accessible from KPFM, and (iii) extend KPFM operation to liquid environments. We briefly discuss the theoretical framework of electrical double layer (EDL) forces and dynamics, the implications and breakdown of classical EDL models for highly charged interfaces or under high ion concentrations, and describe recent modifications of the classical EDL theory relevant for understanding nanoscale electrical measurements at the solid-liquid interface. We further review the latest achievements in mapping surface charge, dielectric constants, and electrodynamic and electrochemical processes in liquids. Finally, we outline the key challenges and opportunities that exist in the field of nanoscale electrical measurements in liquid as well as providing a roadmap for the future development of liquid KPFM.
机译:能量储存,腐蚀,传感和多种生物学功能的基本机制直接耦合到固液界面的电气过程和离子动力学。在许多情况下,这些过程在晶界,步骤边缘,点缺陷,离子通道等中进行空间不均匀,并且具有复杂的时间和电压依赖性动态。这需要时间解决和对这些现象的实际空间探测。在本次综述中,我们讨论了力敏感电压调制扫描探针显微镜(SPM)在固液界面探测电现象的应用。我们首先描述了静电和开尔文探头力显微镜(EFM&KPFM)后的工作原理(EFM&KPFM),在高级KPFM方法和发展中审查了最先进的kpfm方法和发展(i)克服古典kpfm的限制,(ii)扩展KPFM可访问的信息,(iii)将KPFM操作扩展到液体环境。我们简要介绍了电双层(EDL)力和动态的理论框架,经典EDL模型的影响和分解,用于高电荷接口或在高离子浓度下,并描述了对理解纳米级电测量相关的经典EDL理论的最新修改在固液界面。我们进一步审查了液体绘制表面电荷,介电常数和电动和电学过程中的最新成果。最后,我们概述了液体中纳米级电测量领域存在的关键挑战和机会,以及为未来发展液体KPFM的发展路线图。

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