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Multi-center corrosion inhibition strategy for enhanced interfacial stability and longevity of aluminum-air batteries

  • Yu Wan
  • , Yujie Qiang
  • , Sida Liu
  • , Yunfei Gao
  • , Ying Jin
  • , Jinfang Wu
  • , Xuefeng Zou
  • University of Science and Technology Beijing
  • Inner Mongolia University
  • Guizhou Education University

科研成果: 期刊稿件文章同行评审

20 引用 (Scopus)

摘要

Aluminum-Air batteries (AABs) suffer from anode self-corrosion and parasitic hydrogen generation. These issues markedly degrade their electrochemical performance. We introduce a novel multi-center adsorption corrosion inhibitor, 2-mercapto-3-pyridinecarboxylic acid (MPA), to mitigate these issues. Theoretical calculations reveal that MPA exhibits an adsorption energy of 1.54 eV on the Al surface, 2.5 times higher than that of H2O. This high adsorption originates from the multi-center adsorption of its sulfhydryl (-SH), carboxyl (-COOH), and pyridine groups. Experimental results demonstrate that adding 10 mM MPA to 4 M NaOH electrolyte reduces the corrosion current density by 46.1 % (from 25.37 to 13.68 mA cm−2) and suppresses the hydrogen evolution rate by 41.7 %. In-situ Fourier Transform infrared spectroscopy (FTIR), and Time-of-Flight secondary ion mass spectrometry (TOF-SIMS) analyses confirm that MPA forms a dense protective layer on the Al surface via Al-S/O/N chemical bonds. This molecular barrier stabilizes the Al anode interface and its kinetic behavior. Compared to traditional corrosion inhibitors, this interface optimization effect of MBA is more significant. As a result, the discharge cycling lifespan of AABs was extended by 1.5 times and the specific capacity was increased by 65.7 % (1379.3 mAh g−1). Molecular dynamics(MD) simulations further elucidate MPA's rapid adsorption kinetics and its ability to inhibit water penetration at the Al interface. Our findings suggest a robust multi-center adsorption strategy that enables the practical development of long-lasting, high-performance Aluminum-Air batteries to develop their commercial application.

源语言英语
文章编号166814
期刊Chemical Engineering Journal
521
DOI
出版状态已出版 - 1 10月 2025

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