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微型全固态异质结构纳米线锂离子电池作为纳米级电化学过程工程和结构诊断的工具。

Miniature all-solid-state heterostructure nanowire Li-ion batteries as a tool for engineering and structural diagnostics of nanoscale electrochemical processes.

作者信息

Oleshko Vladimir P, Lam Thomas, Ruzmetov Dmitry, Haney Paul, Lezec Henri J, Davydov Albert V, Krylyuk Sergiy, Cumings John, Talin A Alec

机构信息

Material Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA.

出版信息

Nanoscale. 2014 Oct 21;6(20):11756-68. doi: 10.1039/c4nr01666a. Epub 2014 Aug 26.

Abstract

Complex interfacial phenomena and phase transformations that govern the operation of Li-ion batteries require detailed nanoscale 3D structural and compositional characterization that can be directly related to their capacity and electrical transport properties. For this purpose, we have designed model miniature all solid-state radial heterostructure Li-ion batteries composed of LiCoO2 cathode, LiPON electrolyte and amorphous Si anode shells, which were deposited around metallized high-aspect-ratio Si nanowires as a scaffolding core. Such diagnostic batteries, the smallest, complete secondary Li-ion batteries realized to date, were specifically designed for in situ electrical testing in a field-emission scanning electron microscope and/or transmission electron microscope. The results of electrochemical testing were described in detail in a previous publication (Nano Lett., 2012, 12, 505-511). The model Li-ion batteries allow analysis of the correlations between electrochemical properties and their structural evolution during cycling in various imaging, diffraction and spectroscopic modes down to the atomic level. Employing multimode analytical scanning/transmission electron microscopy imaging coupled with correlative multivariate statistical analysis and tomography, we have analyzed and quantified the 3D morphological and structural arrangement of the batteries, including textured platelet-like LiCoO2 nanocrystallites, buried electrode-electrolyte interfaces and hidden internal defects to clarify effects of scaling on a battery's electrochemical performance. Characterization of the nanoscale interfacial processes using model heterostructure nanowire-based Li-ion batteries provides useful guidelines for engineering of prospective nano-sized building blocks in future electrochemical energy storage systems.

摘要

锂离子电池运行过程中涉及的复杂界面现象和相变,需要进行详细的纳米级三维结构和成分表征,这些表征可直接关联到电池的容量和电输运特性。为此,我们设计了一种模型微型全固态径向异质结构锂离子电池,它由LiCoO₂ 阴极、LiPON电解质和非晶硅阳极壳组成,阳极壳围绕金属化的高纵横比硅纳米线沉积,作为支撑核心。这种诊断型电池是迄今为止实现的最小的完整二次锂离子电池,专门设计用于在场发射扫描电子显微镜和/或透射电子显微镜中进行原位电学测试。电化学测试结果已在之前的一篇出版物(《纳米快报》,2012年,12卷,505 - 511页)中详细描述。该模型锂离子电池能够在各种成像、衍射和光谱模式下,直至原子水平,分析循环过程中电化学性质与其结构演变之间的相关性。通过采用多模式分析扫描/透射电子显微镜成像,并结合相关多元统计分析和断层扫描技术,我们对电池的三维形态和结构排列进行了分析和量化,包括织构化的片状LiCoO₂ 纳米微晶、掩埋的电极 - 电解质界面和隐藏的内部缺陷,以阐明尺寸缩放对电池电化学性能的影响。使用基于异质结构纳米线的模型锂离子电池对纳米级界面过程进行表征,为未来电化学储能系统中预期的纳米尺寸构建块的工程设计提供了有用的指导。

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