Aqueous Organic Batteries Using the Proton as a Charge Carrier
Review article, 2023

Benefiting from the merits of low cost, nonflammability, and high operational safety, aqueous rechargeable batteries have emerged as promising candidates for large-scale energy-storage applications. Among various metal-ion/non-metallic charge carriers, the proton (H+) as a charge carrier possesses numerous unique properties such as fast proton diffusion dynamics, a low molar mass, and a small hydrated ion radius, which endow aqueous proton batteries (APBs) with a salient rate capability, a long-term life span, and an excellent low-temperature electrochemical performance. In addition, redox-active organic molecules, with the advantages of structural diversity, rich proton-storage sites, and abundant resources, are considered attractive electrode materials for APBs. However, the charge-storage and transport mechanisms of organic electrodes in APBs are still in their infancy. Therefore, finding suitable electrode materials and uncovering the H+-storage mechanisms are significant for the application of organic materials in APBs. Herein, the latest research progress on organic materials, such as small molecules and polymers for APBs, is reviewed. Furthermore, a comprehensive summary and evaluation of APBs employing organic electrodes as anode and/or cathode is provided, especially regarding their low-temperature and high-power performances, along with systematic discussions for guiding the rational design and the construction of APBs based on organic electrodes.

organic electrodes

device design and construction

proton-storage chemistry

aqueous proton batteries

Author

Mangmang Shi

Xi'an Jiaotong University

Chalmers, Chemistry and Chemical Engineering, Chemistry and Biochemistry

Pratteek Das

Chinese Academy of Sciences

Zhong Shuai Wu

Chinese Academy of Sciences

Tie gen Liu

Tianjin University

Xiaoyan Zhang

2D-Tech

Chalmers, Chemistry and Chemical Engineering, Chemistry and Biochemistry

Advanced Materials

09359648 (ISSN) 15214095 (eISSN)

Vol. 35 42 2302199

Harnessing Covalent Chemistry on Two-dimensional Black Phosphorus Nanosheets

Swedish Research Council (VR) (2020-04903), 2021-01-01 -- 2024-12-31.

2D material-based technology for industrial applications (2D-TECH)

GKN Aerospace Sweden (2D-tech), 2021-01-01 -- 2024-12-31.

VINNOVA (2019-00068), 2020-05-01 -- 2024-12-31.

2D material-based technology for industrial applications (2D-TECH)

GKN Aerospace Sweden (2D-tech), 2021-01-01 -- 2024-12-31.

VINNOVA (2019-00068), 2020-05-01 -- 2024-12-31.

Subject Categories

Materials Chemistry

DOI

10.1002/adma.202302199

PubMed

37253345

More information

Latest update

3/7/2024 9