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相关的光电化学测量揭示了在超微电极处石墨烯纳米片层碰撞的双向电流阶跃。

Correlated Optical-Electrochemical Measurements Reveal Bidirectional Current Steps for Graphene Nanoplatelet Collisions at Ultramicroelectrodes.

机构信息

Department of Chemistry, The University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, United States.

Physique de la Matière Condensée, CNRS, Ecole Polytechnique, 91128 Palaiseau, France.

出版信息

Anal Chem. 2021 Feb 9;93(5):2898-2906. doi: 10.1021/acs.analchem.0c04409. Epub 2021 Jan 25.

Abstract

Single-entity electrochemistry has emerged as a powerful tool to study the adsorption behavior of single nanoscale entities one-at-a-time on an ultramicroelectrode surface. Classical single-entity collision studies have focused on the behavior of spherical nanoparticles or entities where the orientation of the colliding entity does not impact the electrochemical response. Here, we report a detailed study of the collision of asymmetric single graphene nanoplatelets onto ultramicroelectrodes. The collision of conductive graphene nanoplatelets on biased ultramicroelectrode surfaces can be observed in an amperometric - trace, revealing a variety of current transients (both positive and negative steps). To elucidate the dynamics of nanoplatelet adsorption processes and probe response heterogeneity, we correlated the collision events with optical microscopy. We show that positive steps are due to nanoplatelets coming into contact with the ultramicroelectrode, making an electrical connection, and adsorbing partly on the glass surrounding the ultramicroelectrode. Negative steps occur when nanoplatelets adsorb onto the glass without an electrical connection, effectively blocking flux of ferrocenemethanol to the ultramicroelectrode surface. These measurements allow rigorous quantification of current transients and detailed insights into the adsorption dynamics of asymmetric objects at the nanoscale.

摘要

单实体电化学已成为一种强大的工具,可用于研究单个纳米级实体在超微电极表面上逐个吸附的行为。经典的单实体碰撞研究主要集中在球形纳米颗粒或实体上,其中碰撞实体的方向不会影响电化学响应。在这里,我们报告了一个关于不对称单石墨烯纳米片在超微电极上碰撞的详细研究。在偏压超微电极表面上,导电石墨烯纳米片的碰撞可以在安培迹线中观察到,揭示了各种电流瞬变(正阶跃和负阶跃)。为了阐明纳米片吸附过程的动力学和探针响应异质性,我们将碰撞事件与光学显微镜相关联。我们表明,正阶跃是由于纳米片与超微电极接触,形成电连接,并部分吸附在超微电极周围的玻璃上。当纳米片在没有电连接的情况下吸附在玻璃上时,会发生负阶跃,有效地阻止了费罗辛甲醇向超微电极表面的通量。这些测量允许对电流瞬变进行严格的定量,并深入了解纳米尺度上不对称物体的吸附动力学。

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