Issue 18, 2022

A binder-free δ-MnO2@reduced graphene oxide composite film as a bi-functional electrode for aqueous rechargeable sodium-ion batteries and hybrid capacitive deionization

Abstract

Hybrid capacitive deionization (HCDI), a promising desalination process using pairs of electrodes to obtain fresh water, has an attractive advantage of a low driving voltage. This unique character makes it fully suitable for self-powered applications using aqueous batteries. In this study, δ-MnO2@reduced graphene oxide/carbon cloth (δ-MnO2@rGO/CC) is synthesized by an in situ method with carbon cloth as the current collector and reduced graphene as the conducting interconnection. The MnO2 nanoparticles are intimately grown on the rGO/CC matrix and a free-standing electrode is obtained. Consequently, an integrated system with a rechargeable aqueous sodium-ion battery (ASIB) and a HCDI unit is fabricated for simultaneous energy storage and deionization. The aqueous battery is composed of δ-MnO2@rGO/CC and activated carbon (AC) as the cathode and anode, respectively, and demonstrates a charge capacity of 77.8 mA h g−1 at a current density of 50 mA g−1, and its capacitance retention at a current density of 1000 mA g−1 is close to 97% after 1000 cycles. In addition, the δ-MnO2@rGO/CC electrode also shows excellent deionization performance with an adsorption capacity of 19.8 mg g−1 in 10 mM NaCl solution at an applied voltage of 1.2 V. These results indicate that the δ-MnO2@rGO/CC film is suitable for both HCDI and ASIBs.

Graphical abstract: A binder-free δ-MnO2@reduced graphene oxide composite film as a bi-functional electrode for aqueous rechargeable sodium-ion batteries and hybrid capacitive deionization

Supplementary files

Article information

Article type
Paper
Submitted
10 Feb 2022
Accepted
05 Apr 2022
First published
06 Apr 2022

New J. Chem., 2022,46, 8679-8687

A binder-free δ-MnO2@reduced graphene oxide composite film as a bi-functional electrode for aqueous rechargeable sodium-ion batteries and hybrid capacitive deionization

J. Wang, D. Zhang, X. Hu and T. Sun, New J. Chem., 2022, 46, 8679 DOI: 10.1039/D2NJ00673A

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