The Synthesis of Three‐Dimensional Hexagonal Boron Nitride as the Reinforcing Phase of Polymer‐Based Electrolyte for All‐Solid‐State Li Metal Batteries

Author:

Ma Yuhan12,Wu Jiaxin13,Xie Haonan13,Zhang Rui13,Zhang Yiming13,Liu Enzuo13,Zhao Naiqin1345,He Chunnian1345,Wong Andrew Barnabas126ORCID

Affiliation:

1. Joint School of the National University of Singapore and Tianjin University International Campus of Tianjin University Fuzhou 350207 China

2. Department of Chemical and Biomolecular Engineering National University of Singapore Singapore 117585

3. School of Materials Science and Engineering Tianjin Key Laboratory of Composite and Functional Materials Tianjin University Tianjin 300072 China

4. Collaborative Innovation Center of Chemical Science and Engineering Tianjin 300072 China

5. Key Laboratory of Advanced Ceramics and Machining Technology Ministry of Education Tianjin University Tianjin 300072 China

6. Department of Materials Science and Engineering National University of Singapore Singapore 117575

Abstract

AbstractPowdery hexagonal boron nitride (h‐BN), as an important material for electrochemical energy storage, has been typically synthesized in bulk and one/two‐dimensional (1/2D) nanostructured morphologies. However, until now, no method has been developed to synthesize powdery three‐dimensional (3D) h‐BN. This work introduces a novel NaCl‐glucose‐assisted strategy to synthesize micron‐sized 3D h‐BN with a honeycomb‐like structure and its proposed formation mechanism. We propose that NaCl acts as the template of 3D structure and promotes the nitridation reaction by adsorbing NH3. Glucose facilitates the homogeneous coating of boric acid onto the NaCl surface via functionalizing the NaCl surface. During the nitridation reaction, boron oxides (BO4 and BO3) form from a dehydration reaction of boric acid, which is then reduced to O2‐B‐N and O‐B‐N2 intermediates before finally being reduced to BN3 by NH3. When incorporated into polyethylene oxide‐based electrolytes for Li metal batteries, 5 wt % of 3D h‐BN significantly enhances ionic conductivity and mechanical strength. Consequently, this composite electrolyte demonstrates superior electrochemical stability. It delivers 300 h of stable cycles in the Li//Li cell at 0.1 mA cm−2 and retains 89 % of discharge capacity (138.9 mAh g−1) after 100 cycles at 1 C in the LFP//Li full cell.

Funder

College of Design and Engineering, National University of Singapore

National Science Fund for Distinguished Young Scholars

National Natural Science Foundation of China

Publisher

Wiley

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