Protons intercalation induced hydrogen bond network in δ-MnO cathode for high-performance aqueous zinc-ion batteries.

J Colloid Interface Sci

Shaanxi International Joint Research Center of Surface Technology for Energy Storage Materials, Institute of Advanced Electrochemical Energy & School of Materials Science and Engineering, Xi'an University of Technology, Xi'an 710048, Shaanxi, China; Guangdong Yuanneng Technologies Co Ltd, Foshan, Guangdong 528223, China; Qinghai Provincial Key Laboratory of Nanomaterials and Nanotechnology, Qinghai Minzu University, Xining 810007, China. Electronic address:

Published: December 2024

AI Article Synopsis

  • Birnessite-type MnO (δ-MnO) shows promise as a cathode for zinc-ion batteries but faces challenges with structural instability and slow reaction rates.
  • A proton intercalation strategy was implemented to enhance the material's stability, enabling strong bonding and rapid proton diffusion by creating a hydrogen bond network.
  • The modified MnO (H-MnO) achieved an impressive capacity of 401.7 mAh/g, showcasing excellent fast-charging performance and reduced energy barriers, while also preventing unwanted reactions with zinc sulfate.

Article Abstract

Birnessite-type MnO (δ-MnO) exhibits great potential as a cathode material for aqueous zinc-ion batteries (AZIBs). However, the structural instability and sluggish reaction kinetics restrict its further application. Herein, a unique protons intercalation strategy was utilized to simultaneously modify the interlayer environment and transition metal layers of δ-MnO. The intercalated protons directly form strong O  H bonds with the adjacent oxygens, while the increased HO molecules also establish a hydrogen bond network (O  H···O) between HO molecules or bond with adjacent oxygens. Based on the Grotthuss mechanism, these bondings ultimately enhance the stability of layered structures and facilitate the rapid diffusion of protons. Moreover, the introduction of protons induces numerous oxygen vacancies, reduces steric hindrance, and accelerates ion transport kinetics. Consequently, the protons intercalated δ-MnO (H-MnO) demonstrates exceptional specific capacity of 401.7 mAh/g at 0.1 A/g and a fast-charging performance over 1000 cycles. Density functional theory analysis confirms the improved electronic conductivity and reduced diffusion energy barrier. Most importantly, electrochemical quartz crystal microbalance tests combining with ex-situ characterizations verify the inhibitory effect of the interlayer proton environment on basic zinc sulfate formation. Protons intercalation behavior provides a promising avenue for the development of MnO as well as other cathodes in AZIBs.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.06.181DOI Listing

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