Boron Nitride‐Integrated Lithium Batteries: Exploring Innovations in Longevity and Performance

Author:

Angizi Shayan1,Ahmad Alem Sayed Ali2,Torabian Mahdi3,Khalaj Maryam4,Golberg Dmitri56,Pakdel Amir7ORCID

Affiliation:

1. Department of Chemical Engineering McMaster University 1280 Main St W Hamilton ON L8S 4L7 Canada

2. Institute of Chemistry of Polymeric Materials, Montanuniversität Leoben Otto‐Glöckel‐Strasse 2 A‐8700 Leoben Austria

3. Department of Chemistry, Materials and Chemical Engineering, Politecnico di Milano Piazza Leonardo da Vinci 32 20133 Milan Italy

4. Department of Materials Science and Engineering Northwestern University Evanston IL 60208 USA

5. Centre for Materials Science and School of Chemistry and Physics Queensland University of Technology (QUT) 2 George Brisbane QLD 4000 Australia

6. Research Centre for Materials Nanoarchitectonics (MANA) National Institute for Materials Science (NIMS) Namiki 1 Ibaraki 3050044 Japan

7. Department of Mechanical, Manufacturing and Biomedical Engineering, Trinity College Dublin The University of Dublin Dublin D02PN40 Ireland

Abstract

The current global warming, coupled with the growing demand for energy in our daily lives, necessitates the development of more efficient and reliable energy storage devices. Lithium batteries (LBs) are at the forefront of emerging power sources addressing these challenges. Recent studies have shown that integrating hexagonal boron nitride (h‐BN) nanomaterials into LBs enhances the safety, longevity, and electrochemical performance of all LB components, including electrodes, electrolytes, and separators, thereby suggesting their potential value in advancing eco‐friendly energy solutions. This review provides an overview of the most recent applications of h‐BN nanomaterials in LBs. It begins with an informative introduction to h‐BN nanomaterials and their relevant properties in the context of LB applications. Subsequently, it addresses the challenges posed by h‐BN and discusses existing strategies to overcome these limitations, offering valuable insights into the potential of BN nanomaterials. The review then proceeds to outline the functions of h‐BN in LB components, emphasizing the molecular‐level mechanisms responsible for performance improvements. Finally, the review concludes by presenting the current challenges and prospects of integrating h‐BN nanomaterials into battery research.

Funder

Enterprise Ireland

Science Foundation Ireland

Australian Research Council

Publisher

Wiley

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