Mesoscale dynamics of electrosorbed ions in fast-charging carbon-based nanoporous electrodes

IF 38.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Peiyao Wang, Ke Zhang, Jinsha Liao, Xiao Wang, George P. Simon, Jefferson Zhe Liu, Dan Li
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引用次数: 0

Abstract

Electrosorption, the accumulation of electrolyte ions at charged interfaces, is a common phenomenon across various electrochemical systems. Its impact is particularly pronounced in nanoporous electrodes owing to their high surface-to-volume ratios. Although electrosorption alters the ion distribution at the electrode–electrolyte interface through the formation of an electrical double layer, the effects of electrosorbed ions on the charge storage dynamics in nanoporous electrodes and their ability to improve charging processes have often been overlooked. Here we use a multilayered reduced graphene oxide-based membrane as a model nanoporous electrode material, integrating numerical simulations with experimental insights. We monitor the spatiotemporal distribution of electrosorbed ions and electrical potentials across the nanopore network during fast charging of symmetrical laboratory-scale cells using aqueous and non-aqueous electrolyte solutions. This method allowed us to quantitatively assess how features of the nanoporous electrode mesostructure, such as nanoslit size, the distribution of nanoslit sizes and electrode thickness, dynamically influence ion electrosorption and the local electrical and chemical potentials across the network. Our findings reveal that the mesostructure of nanoporous electrodes influences how migration and diffusion currents, mediated by electrosorbed ions, respond to charging rates.

Abstract Image

快速充电碳基纳米孔电极中电吸附离子的中尺度动力学
电吸附是指电解质离子在带电界面上的积累,是各种电化学系统中常见的现象。由于其高表面体积比,其影响在纳米多孔电极中尤为明显。虽然电吸附通过形成双电层改变了电极-电解质界面上的离子分布,但电吸附离子对纳米孔电极中电荷存储动力学的影响及其改善充电过程的能力往往被忽视。在这里,我们使用多层还原氧化石墨烯基膜作为模型纳米孔电极材料,将数值模拟与实验见解相结合。在对称的实验室级电池使用水和非水电解质溶液快速充电过程中,我们监测了电吸附离子和电势在纳米孔网络中的时空分布。这种方法使我们能够定量地评估纳米孔电极介观结构的特征,如纳米缝的大小、纳米缝的大小和电极厚度的分布,如何动态地影响离子电吸附以及整个网络中的局部电势和化学势。我们的研究结果表明,纳米孔电极的介观结构影响了由电吸附离子介导的迁移和扩散电流对充电速率的响应。
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来源期刊
Nature nanotechnology
Nature nanotechnology 工程技术-材料科学:综合
CiteScore
59.70
自引率
0.80%
发文量
196
审稿时长
4-8 weeks
期刊介绍: Nature Nanotechnology is a prestigious journal that publishes high-quality papers in various areas of nanoscience and nanotechnology. The journal focuses on the design, characterization, and production of structures, devices, and systems that manipulate and control materials at atomic, molecular, and macromolecular scales. It encompasses both bottom-up and top-down approaches, as well as their combinations. Furthermore, Nature Nanotechnology fosters the exchange of ideas among researchers from diverse disciplines such as chemistry, physics, material science, biomedical research, engineering, and more. It promotes collaboration at the forefront of this multidisciplinary field. The journal covers a wide range of topics, from fundamental research in physics, chemistry, and biology, including computational work and simulations, to the development of innovative devices and technologies for various industrial sectors such as information technology, medicine, manufacturing, high-performance materials, energy, and environmental technologies. It includes coverage of organic, inorganic, and hybrid materials.
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