3D Printing‐Enabled Design and Manufacturing Strategies for Batteries: A Review

Author:

Fonseca Nathan1ORCID,Thummalapalli Sri Vaishnavi1ORCID,Jambhulkar Sayli2ORCID,Ravichandran Dharneedar1ORCID,Zhu Yuxiang1ORCID,Patil Dhanush1ORCID,Thippanna Varunkumar1ORCID,Ramanathan Arunachalam1ORCID,Xu Weiheng2ORCID,Guo Shenghan12ORCID,Ko Hyunwoong12ORCID,Fagade Mofe3,Kannan Arunchala M.4ORCID,Nian Qiong5ORCID,Asadi Amir6,Miquelard‐Garnier Guillaume7ORCID,Dmochowska Anna7,Hassan Mohammad K.8,Al‐Ejji Maryam8,El‐Dessouky Hassan M.910,Stan Felicia11,Song Kenan1212ORCID

Affiliation:

1. Manufacturing Engineering School of Manufacturing Systems and Networks (MSN) Ira A. Fulton Schools of Engineering Arizona State University (ASU) Mesa AZ 85212 USA

2. Systems Engineering School of Manufacturing Systems and Networks (MSN) Ira A. Fulton Schools of Engineering, Arizona State University (ASU) Mesa AZ 85212 USA

3. Mechanical Engineering School of Engineering for Matter Transport and Energy (SEMTE) Ira A. Fulton Schools of Engineering Arizona State University Tempe AZ 85281 USA

4. Fuel Cell Laboratory The Polytechnic School (TPS) Ira A. Fulton Schools of Engineering Arizona State University Mesa AZ 85212 USA

5. School of Engineering for Matter Transport and Energy (SEMTE) Arizona State University Tempe AZ 85287 USA

6. Department of Engineering Technology and Industrial Distribution (ETID) Texas A&M University College Station TX 77843 USA

7. Laboratoire PIMM Arts et Métiers Institute of Technology CNRS, Cnam HESAM Universite 151 Boulevard de l'Hopital Paris 75013 France

8. Center for Advanced Materials Qatar University P.O. BOX 2713 Doha Qatar

9. Physics Department Faculty of Science Galala University Galala City 43511 Egypt

10. Physics Department Faculty of Science Mansoura University Mansoura 35516 Egypt

11. Center of Excellence Polymer Processing & Faculty of Engineering Dunarea de Jos University of Galati 47 Domneasca Street Galati 800008 Romania

12. Mechanical Engineering University of Georgia 302 E. Campus Rd Athens Georgia 30602 United States

Abstract

AbstractLithium‐ion batteries (LIBs) have significantly impacted the daily lives, finding broad applications in various industries such as consumer electronics, electric vehicles, medical devices, aerospace, and power tools. However, they still face issues (i.e., safety due to dendrite propagation, manufacturing cost, random porosities, and basic & planar geometries) that hinder their widespread applications as the demand for LIBs rapidly increases in all sectors due to their high energy and power density values compared to other batteries. Additive manufacturing (AM) is a promising technique for creating precise and programmable structures in energy storage devices. This review first summarizes light, filament, powder, and jetting‐based 3D printing methods with the status on current trends and limitations for each AM technology. The paper also delves into 3D printing‐enabled electrodes (both anodes and cathodes) and solid‐state electrolytes for LIBs, emphasizing the current state‐of‐the‐art materials, manufacturing methods, and properties/performance. Additionally, the current challenges in the AM for electrochemical energy storage (EES) applications, including limited materials, low processing precision, codesign/comanufacturing concepts for complete battery printing, machine learning (ML)/artificial intelligence (AI) for processing optimization and data analysis, environmental risks, and the potential of 4D printing in advanced battery applications, are also presented.

Funder

Qatar National Research Fund

American Chemical Society Petroleum Research Fund

Barth Syndrome Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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