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Alkaline zinc-manganese dioxide (Zn-MnO) batteries are well suited for grid storage applications because of their inherently safe, aqueous electrolyte and established materials supply chain, resulting in low production costs. With recent advances in the development of Cu/Bi-stabilized birnessite cathodes capable of the full 2-electron capacity equivalent of MnO (617 mA h/g), there is a need for selective separators that prevent zincate (Zn(OH)) transport from the anode to the cathode during cycling, as this electrode system fails in the presence of dissolved zinc. Herein, we present the synthesis of -butylimidazolium-functionalized polysulfone (NBI-PSU)-based separators and evaluate their ability to selectively transport hydroxide over zincate. We then examine their impact on the cycling of high depth of discharge Zn/(Cu/Bi-MnO) batteries when inserted in between the cathode and anode. Initially, we establish our membranes' selectivity by performing zincate and hydroxide diffusion tests, showing a marked improvement in zincate-blocking ( (cm/min): 0.17 ± 0.04 × 10 for 50-PSU, our most selective separator vs 2.0 ± 0.8 × 10 for Cellophane 350P00 and 5.7 ± 0.8 × 10 for Celgard 3501), while maintaining similar crossover rates for hydroxide ( (cm/min): 9.4 ± 0.1 × 10 for 50-PSU vs 17 ± 0.5 × 10 for Cellophane 350P00 and 6.7 ± 0.6 × 10 for Celgard 3501). We then implement our membranes into cells and observe an improvement in cycle life over control cells containing only the commercial separators (cell lifetime extended from 21 to 79 cycles).
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http://dx.doi.org/10.1021/acsami.0c14143 | DOI Listing |
Small Methods
December 2024
College of Chemistry and Chemical Engineering, Chongqing University, Chongqing, 401331, P. R. China.
Aqueous zinc-ion batteries (AZIBs) are considered a promising choice for energy storage devices owing to the excellent safety and favorable capacity of the Zn anode. However, the uncontrolled dendrite growth of Zn anode severely constrains the practical applications of AZIBs. Herein, a novel ion enrichment layer of CuS is designed and constructed on the Zn foil surface to achieve dendrite-free Zn anode.
View Article and Find Full Text PDFRSC Adv
December 2024
Guangdong-Hong Kong-Macao Joint Laboratory for Intelligent Micro-Nano Optoelectronic Technology, School of Physics and Optoelectronic Engineering, School of Environmental and Chemical Engineering, Foshan University Foshan 528000 China
Aqueous zinc-ion batteries are highly praised for their cost-effectiveness, environmental friendliness, and high safety, making them an ideal choice for next-generation energy storage systems. However, the practical application of Zn metal anodes is constrained by well-known challenges such as dendrite growth and significant interfacial side reactions. This study introduces a trace amount of taurine (TAU) as a leveling additive into the electrolyte to optimize the microstructure of the electrolyte and the anode interface chemistry.
View Article and Find Full Text PDFInt J Biol Macromol
December 2024
Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Jinan, 250353, Shandong, PR China.
Aqueous zinc-ion batteries (AZIBs), one of the most promising renewable energy storage devices, are largely impeded by the disreputable cycling stability in its large-scale application as a result of the undesirable Zn dendrites growth and the side reactions. In this context, a carboxylate (-COO) anionic group functionalized cellulose nanofibrils separator (A-CNF) with nanoporous structure and ion-sieving effect is developed to realize a stable Zn anode without dendrites and by-products. An increased Zn transference number and uniform Zn deposition can be achieved through the electrostatic adsorption between -COO and Zn.
View Article and Find Full Text PDFACS Appl Mater Interfaces
December 2024
State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun 130012, PR China.
Aqueous zinc-ion batteries (AZIBs) have garnered widespread attention due to their promising development and application prospects. However, progress of AZIBs has been hindered by zinc (Zn) dendrites and side reactions at the electrode-electrolyte interface (EEI). In particular, the large and uneven pores of commercial glass fiber (GF) separators lead to nonuniform Zn transport, which causes side reactions.
View Article and Find Full Text PDFNano Lett
November 2024
School of Low-carbon Energy and Power Engineering, China University of Mining and Technology, Xuzhou 221116, China.
Rechargeable aqueous zinc-ion batteries (RAZIBs) are attracting increasing attention due to their advantages in safety, cost, and energy density. However, the choice of electrode binders when using aqueous electrolytes faces many constraints, as nontoxic and low-cost hydrophilic binders, such as sodium alginate (SA), can lead to electrode damage due to excessive swelling in aqueous solution. Here, by employing double-network hydrogel electrolytes formed by poly(vinyl alcohol) and alginate, the content and activity of water molecules at the electrode-electrolyte interface are reduced, and the mechanical stability of the electrode is reinforced, thereby affording reliable protection to the cathode bonded with SA.
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