A comprehensive review of carbon-based air cathode materials for advanced non-aqueous lithium-air batteries

被引:0
|
作者
Kale, Amol M. [1 ]
Lee, Seul-Yi [1 ]
Park, Soo-Jin [1 ,2 ]
机构
[1] Inha Univ, Dept Chem, Incheon 22212, South Korea
[2] Kyung Hee Univ, Coll Engn, Dept Mech Engn, Yongin 17104, South Korea
基金
新加坡国家研究基金会;
关键词
Lithium - air battery; Carbon-based air cathode; Nanocarbon materials; Carbon chemistry; METAL-ORGANIC FRAMEWORKS; RECHARGEABLE LI-AIR; OXYGEN REDUCTION; ENERGY DENSITY; BIFUNCTIONAL ELECTROCATALYSTS; COMPOSITE MICROSPHERES; LI-O-2; BATTERIES; ACTIVATED CARBON; REDOX MEDIATORS; RECENT PROGRESS;
D O I
10.1016/j.ensm.2024.103874
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Lithium-air batteries (LABs) present a promising solution for future energy storage due to their exceptional energy density and potential to address imminent energy and environmental challenges. The complicated generation and breakdown of Li2O2 at the air-cathode is the main cause of the durability and stability problems that LABs encounter. These problems are not merely related to low catalytic efficiency; instead, problems are made worse by restricted charge/discharge reversibility along with side-product generation in open-air. Furthermore, the function of solid-phase electrocatalysts is still controversial, particularly when Li2O2 generation is involved. This makes the hunt for efficient air-cathode materials more challenging. Since their inception in 1996, carbon has been crucial in advancing LAB technology, enhancing our understanding of its mechanisms and applications. This review examines advances in carbon materials and chemistry for LABs, focusing on structural characteristics, electrochemical behavior, and mechanistic insights. Air-cathode materials are categorized into carbon nanotubes (CNTs), carbon nanofibers (CNFs), graphene, bio-waste-derived carbons, and metal-organic frameworks (MOFs)-derived carbons. Additionally, the review evaluates the design, synthesis strategies, and electrochemical performance of these carbon-based air-cathode materials. It also explores oxygen-selective membranes (OSMs) as a potential solution to mitigate the adverse effects of H2O and CO2 in ambient air, which lead to the formation of Li2O2 and reactions with the electrolyte and Li anode in open-air systems. In conclusion, this review addresses the current challenges faced by LABs and highlights the potential for further research and development in this field.
引用
收藏
页数:34
相关论文
共 50 条
  • [41] A comprehensive review of cathode materials for Na-air batteries
    Mao, Pengcheng
    Arandiyan, Hamidreza
    Mofarah, Sajjad S.
    Koshy, Pramod
    Pozo-Gonzalo, Cristina
    Zheng, Runguo
    Wang, Zhiyuan
    Wang, Yuan
    Bhargava, Suresh K.
    Sun, Hongyu
    Shao, Zongping
    Liu, Yanguo
    ENERGY ADVANCES, 2023, 2 (04): : 465 - 502
  • [42] A Mini-Review on Non-Aqueous Lithium-Oxygen Batteries - Electrochemistry and Cathode Materials
    Riaz, Ahmer
    Jung, Kyu-Nam
    Lee, Jong-Won
    JOURNAL OF ELECTROCHEMICAL SCIENCE AND TECHNOLOGY, 2015, 6 (02) : 50 - 58
  • [43] Lithium Ion Conducting Solid Electrolytes for Aqueous Lithium-air Batteries
    Imanishi, Nobuyuki
    Matsui, Masaki
    Takeda, Yasuo
    Yamamot, Osamu
    ELECTROCHEMISTRY, 2014, 82 (11) : 938 - 945
  • [44] A dual pore carbon aerogel based air cathode for a highly rechargeable lithium-air battery
    Wang, Fang
    Xu, Yang-Hai
    Luo, Zhong-Kuan
    Pang, Yan
    Wu, Qi-Xing
    Liang, Chun-Sheng
    Chen, Jing
    Liu, Dong
    Zhang, Xiang-hua
    JOURNAL OF POWER SOURCES, 2014, 272 : 1061 - 1071
  • [45] Research Progress and Optimization of Non-aqueous Electrolyte for Lithium Air Batteries
    Gu Daming
    Wang Yu
    Gu Shuo
    Zhang Chuanming
    Yang Dandan
    ACTA CHIMICA SINICA, 2013, 71 (10) : 1354 - 1364
  • [46] Charting the known chemical space for non-aqueous lithium-air battery electrolyte solvents
    Husch, Tamara
    Korth, Martin
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2015, 17 (35) : 22596 - 22603
  • [47] Three-dimensional transient modeling of a non-aqueous electrolyte lithium-air battery
    Gwak, Geonhui
    Ju, Hyunchul
    ELECTROCHIMICA ACTA, 2016, 201 : 395 - 409
  • [48] Design and modification of carbon-based materials for high energy density non-aqueous aluminum ion batteries: A review
    Wang, Yang
    Zhang, Zeyu
    Yuan, Fei
    Wang, Bo
    JOURNAL OF POWER SOURCES, 2024, 597
  • [49] Degradation of LiCoO2 in aqueous lithium-air batteries
    Aziz, Nur Azilina Abdul
    De Cunha, Mabel
    Abdullah, Tuti Katrina
    Mohamad, Ahmad Azmin
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2017, 41 (02) : 289 - 296
  • [50] Review-Understanding and Mitigating Some of the Key Factors that Limit Non-Aqueous Lithium-Air Battery Performance
    Lu, Jun
    Lau, Kah Chun
    Sun, Yang-Kook
    Curtiss, Larry A.
    Amine, Khalil
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2015, 162 (14) : A2439 - A2446