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Correlative Electrochemical Microscopy of Li-Ion (De)intercalation at a Series of Individual LiMn2 O4 Particles.


ABSTRACT: The redox activity (Li-ion intercalation/deintercalation) of a series of individual LiMn2 O4 particles of known geometry and (nano)structure, within an array, is determined using a correlative electrochemical microscopy strategy. Cyclic voltammetry (current-voltage curve, I-E) and galvanostatic charge/discharge (voltage-time curve, E-t) are applied at the single particle level, using scanning electrochemical cell microscopy (SECCM), together with co-location scanning electron microscopy that enables the corresponding particle size, morphology, crystallinity, and other factors to be visualized. This study identifies a wide spectrum of activity of nominally similar particles and highlights how subtle changes in particle form can greatly impact electrochemical properties. SECCM is well-suited for assessing single particles and constitutes a combinatorial method that will enable the rational design and optimization of battery electrode materials.

SUBMITTER: Tao B 

PROVIDER: S-EPMC6766856 | biostudies-other | 2019 Mar

REPOSITORIES: biostudies-other

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Correlative Electrochemical Microscopy of Li-Ion (De)intercalation at a Series of Individual LiMn<sub>2</sub> O<sub>4</sub> Particles.

Tao Binglin B   Yule Lewis C LC   Daviddi Enrico E   Bentley Cameron L CL   Unwin Patrick R PR  

Angewandte Chemie (International ed. in English) 20190221 14


The redox activity (Li-ion intercalation/deintercalation) of a series of individual LiMn<sub>2</sub> O<sub>4</sub> particles of known geometry and (nano)structure, within an array, is determined using a correlative electrochemical microscopy strategy. Cyclic voltammetry (current-voltage curve, I-E) and galvanostatic charge/discharge (voltage-time curve, E-t) are applied at the single particle level, using scanning electrochemical cell microscopy (SECCM), together with co-location scanning electr  ...[more]

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