Exploring the Synergistic Effects of Dual‐Layer Electrodes for High Power Li‐Ion Batteries

Author:

Dawkins Jeremy I. G.1ORCID,Pan Yani1,Ghavidel Mohammadreza Z.12,Geissler Johann1,Krueger Bastian12,Chhin Danny1,Yuan Hui34,Tong Victoria2,Pelletier‐Villeneuve Brittany2,Feng Renfei5ORCID,Botton Gianluigi A.45ORCID,Chapman Karena W.6ORCID,Mauzeroll Janine1ORCID,Schougaard Steen B.2ORCID

Affiliation:

1. Department of Chemistry McGill University 801 Sherbrooke Street West Montreal Québec H3A 0B8 Canada

2. Department of Chemistry NanoQAM Université du Québec à Montréal Québec Center for Functional Materials Case Postale 8888 Succ. Centre-ville Montréal Québec H3C 3P8 Canada

3. Canadian Centre for Electron Microscopy McMaster University 1280 Main Street West Hamilton Ontario L8S 4M1 Canada

4. Department of Materials Science and Engineering McMaster University 1280 Main Street West Hamilton Ontario L8S 4L7 Canada

5. Canadian Light Source 44 Innovation Boulevard Saskatoon Saskatchewan S7N 2V3 Canada

6. Department of Chemistry Stony Brook University 100 Nicolls Rd Stony Brook NY 11794 USA

Abstract

AbstractThe electrification of the transport sector has created an increasing demand for lithium‐ion batteries that can provide high power intermittently while maintaining a high energy density. Given the difficulty in designing a single redox material with both high power and energy density, electrodes based on composites of several electroactive materials optimized for power or capacity are being studied extensively. Among others, fast‐charging LiFePO4 and high energy Li(NixMnyCoz)O2 are commonly employed in industrial cell manufacturing. This study focuses on comparing different approaches to combining these two active materials into a single electrode. These arrangements were compared using standard electrochemical (dis)charge procedures and using synchrotron X‐ray fluorescence to identify variations in solution concentration gradient formation. The electrochemical performance of the layered electrodes with the high‐power material on top is found to be enhanced relative to its blended electrode counterpart when (dis)charged at the same specific currents. These findings highlight dual‐layer lithium‐ion batteries as an inexpensive way of increasing energy and power density of lithium‐ion batteries as well as a model system to study and exploit the synergistic effects of blended electrodes.

Funder

Government of Saskatchewan

University of Saskatchewan

Natural Sciences and Engineering Research Council of Canada

General Motors of Canada

McMaster University

Publisher

Wiley

Subject

Electrochemistry,Catalysis

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