A significantly improved polymer||Ni(OH)2 alkaline rechargeable battery using anthraquinone-based conjugated microporous polymer anode
Journal article, 2022

Alkaline rechargeable batteries (ARBs) are predicted to be an attractive solution for large-scale electrochemical energy storage applications. However, their advancement is greatly hindered by the lack of high-performance and sustainable anode that can stably operate in less-corroding, low electrolyte concentration. Herein, we report the first example of polymer ARB able to operate in low concentrate electrolyte (1м potassium hydroxide [KOH]) due to the employment of a robust anthraquinone-based conjugated microporous polymer (IEP-11) as anode. The assembled IEP-11||Ni(OH)2 achieves high cell voltage (0.98 V), high gravimetric/areal capacities (150 mAh/g/7.2 mAh/cm2 at 3.5 and 65 mg/cm2, respectively), long cycle life (22,730 cycles, 960 h, 75% capacity retention at 20C), excellent rate performance (75 mAh/g at 50C) and low temperature operativity (75 mAh/g at −10 °C). Furthermore, rate capability, low-temperature performance and ability to prepare high mass loading anodes, along with low self-discharge is improved compared to conventional linear poly (anthraquinone sulfide) (PAQS) in commonly used 10 м KOH. This overall performance for IEP-11||Ni(OH)2 is not only far superior to that of PAQS||Ni(OH)2 owing to porous polymer's high specific surface area, combined micro-/mesoporosity and robust and mechanically stable three-dimensional (3D) architecture compared to the linear PAQS, but also surpass most of the reported organic||nickel [Ni]/cobalt [Co]/manganese [Mn] alkaline rechargeable batteries (ARBs).

Alkaline battery

Polymer electrode

Conjugated microporous polymer

Anthraquinone

Aqueous battery

Carbonyl porous polymers

Author

Rebecca Grieco

IMDEA Energy Institute

Antonio Molina

IMDEA Energy Institute

Jaime Sanchez Sanchez

IMDEA Energy Institute

Chalmers, Industrial and Materials Science, Materials and manufacture

Nagaraj Patil

IMDEA Energy Institute

Marta Liras

IMDEA Energy Institute

Rebeca Marcilla

IMDEA Energy Institute

Materials Today Energy

24686069 (eISSN)

Vol. 27 101014

Subject Categories

Energy Engineering

Materials Chemistry

Other Chemical Engineering

DOI

10.1016/j.mtener.2022.101014

More information

Latest update

1/3/2024 9