Microfluidic Shape Analysis of Non‐spherical Graphite for Li‐Ion Batteries via Viscoelastic Particle Focusing

Author:

Park Jee In1ORCID,Hong Sabin1,Jin Daekwon1ORCID,Lee Won Jun1,Kim Kyeong Jin2ORCID,Lee Young Ki3ORCID,Lee Seung Woo4ORCID,Ahn Kyung Hyun2ORCID,Hwang Jongkook5ORCID,Kim Ju Min15ORCID

Affiliation:

1. Department of Energy Systems Research Ajou University Suwon Republic of Korea

2. School of Chemical and Biological Engineering Institute of Chemical Processes Seoul National University Seoul Republic of Korea

3. School of Food Biotechnology and Chemical Engineering Hankyong National University Anseong Republic of Korea

4. The George W. Woodruff School of Mechanical Engineering Georgia Institution of Technology Atlanta GA USA

5. Department of Chemical Engineering Ajou University Suwon Republic of Korea

Abstract

AbstractThe size and shape of graphite, which is a popular active anode material for lithium‐ion batteries (LIBs), significantly affect the electrochemical performance of LIBs and the rheological properties of the electrode slurries used in battery manufacturing. However, the accurate characterization of its size and shape remains challenging. In this study, the edge plane of graphite in a cross‐slot microchannel via viscoelastic particle focusing is characterized. It is reported that the graphite particles are aligned in a direction that shows the edge plane by a planar extensional flow field at the stagnation point of the cross‐slot region. Accurate quantification of the edge size and shape for both spheroidized natural and ball‐milled graphite is achieved when aligned in this manner. Ball‐milled graphite has a smaller circularity and higher aspect ratio than natural graphite, indicating a more plate‐like shape. The effects of these differences in graphite shape and size on the rheological properties of the electrode slurry, the structure of the coated electrodes, and electrochemical performance are investigated. This method can contribute to the quality control of graphite for the mass production of LIBs and enhance the electrochemical performance of LIBs.

Funder

National Research Foundation of Korea

Publisher

Wiley

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