高等学校化学学报

• 研究论文 • 上一篇    下一篇

一种绿色高效的氨基酸衍生物添加剂用于提升碱性铝空气电池性能

郭雷1,苏安康1,陈鑫磊1, 谭伯川2, 昙艳1,花佳丽1,石维1   

  1. 1. 铜仁学院材料与化学工程学院 2. 重庆科技大学冶金与动力工程学院

  • 收稿日期:2025-11-03 修回日期:2026-02-01 网络首发:2026-02-06 发布日期:2026-02-06
  • 通讯作者: 郭雷 E-mail:chygl@gztrc.edu.cn
  • 基金资助:
    国家自然科学基金 (批准号: 22062022)、铜仁市科技局基础研究项目 (批准号: 铜市科研[2024]15号) 和铜仁学院研究生创新基金项目 (批准号: trxyyc-202417, trxyyc-202523) 资助

A Green and Efficient Amino Acid-Derived Additive for Enhanced Performance of Alkaline Al-air Batteries

GUO Lei1*,SU Ankang1,CHEN Xinlei1, TAN Bochuan2, TAN Yan1, HUA Jiali1, SHI Wei1   

  1. 1. School of Materials and Chemical Engineering, Tongren university 2. School of Metallurgy and Power Engineering, Chongqing University of Science and Technology

  • Received:2025-11-03 Revised:2026-02-01 Online First:2026-02-06 Published:2026-02-06
  • Supported by:
    Supported by the National Natural Science Foundation of China (No. 22262030), the Project of Tongren Science and Technology Bureau (No. [2024]15), and the Innovation Fund Project for Graduate Student of Tongren University (No. trxyyc-202417, trxyyc-202523)

摘要: 本研究以氨基酸衍生物 N-乙酰-DL-色氨酸(NDLT)为添加剂,系统研究其在碱性铝空气电池(AABs)电解液中的作用机制及对电池性能的影响。通过析氢实验、电化学测试、全电池性能评估及微观形貌表征,揭示了NDLT对铝合金阳极腐蚀行为与放电性能的调控机理。结果表明,NDLT可在铝合金表面吸附形成致密的阻水保护膜,有效阻隔电解液中水分子与铝表面的直接接触,从而显著抑制铝的自腐蚀和寄生析氢反应(HER),并改善铝阳极的放电行为。同时,NDLT的吸附有助于构建均匀稳定的铝/电解液界面,提高铝阳极的放电电位和电化学反应动力学性能。在4 M NaOH 电解液中,NDLT的最佳抑制浓度为7 mM,此时铝阳极利用率可达88.3%。全电池测试结果显示,添加7 mM NDLT后,电池能量密度由空白电解液的1550 Wh kg?1显著提升至3448 Wh kg?1,容量密度由1324.9 mAh g?1提高至2632.3 mAh g?1。本研究为提升碱性铝空气电池的耐用性与能量输出提供了一种绿色高效的电解液调控策略,并为氨基酸衍生物类添加剂的设计与应用奠定了理论基础。

关键词: 铝空气电池, 界面调控, 电解液添加剂, 氨基酸衍生物

Abstract: In this study, N-acetyl-DL-tryptophan (NDLT), an amino acid derivative, was introduced as an electrolyte additive to regulate the anode behavior of alkaline aluminum-air batteries (AABs). The effect mechanism of NDLT on Al alloy anode was systematically investigated through hydrogen evolution measurements, electrochemical tests, full-cell performance evaluation, and microstructural characterization. The results demonstrate that NDLT can adsorb onto the Al alloy surface to form a compact water-blocking protective layer, effectively preventing direct contact between water molecules and the Al surface. This adsorption behavior significantly suppresses Al self-corrosion and parasitic hydrogen evolution reactions (HER), thereby improving the discharge performance of AABs. Meanwhile, NDLT contributes to the construction of a uniform and stable Al/electrolyte interface, leading to an enhanced discharge potential and improved electrochemical kinetics of the Al anode. In a 4 M NaOH electrolyte, the optimal inhibition concentration of NDLT was determined to be 7 mM, at which the Al anode utilization reached 88.3%. Full-cell tests further revealed that the introduction of 7 mM NDLT increased the energy density from 1550 Wh kg?1 to 3448 Wh kg?1 and the capacity density from 1324.9 mAh g?1 to 2632.3 mAh g?1. This work provides an effective and environmentally benign electrolyte regulation strategy to enhance the durability and energy output of alkaline AABs, and offers a theoretical basis for the design and development of high-efficiency amino acid-derived additives.

Key words: Aluminum-air battery, Interface regulation, Electrolyte additive, Amino acid derivative

中图分类号: 

TrendMD: