PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 28, 2026Advanced Functional Materials0 citations

Unraveling the Carbonyl Charge‐Storage Mechanism in Conjugated Carbonyl‐Based Organic Electrodes for High‐Performance Aqueous Zinc‐Ion Batteries

View Full Paper
XMXiao MaYGYi‐xuan GaoYWYue Wang

Key Points

  • This research aims to clarify the charge-storage mechanism of carbonyl-based organic electrodes in aqueous zinc-ion batteries.
  • Molecular design of conjugated carbonyl compound DHB and its oxidized derivative o-DHB
  • Electrochemical and spectroscopic analyses comparing DHB and o-DHB
  • Theoretical calculations assessing the LUMO energy and HOMO-LUMO gap
  • Zn||o-DHB battery achieves a specific capacity of 323 mAh g−1 at 5 A g−1
  • Retains 71% of capacity after 3,500 cycles, outperforming existing organic AZIBs
  • Demonstrated that Zn2+ migration is the primary mechanism for charge storage, not H+ insertion

Abstract

ABSTRACT Developing carbonyl‐based organic electrodes with multi‐active sites is crucial for advancing aqueous zinc‐ion batteries (AZIBs), but a fundamental understanding of their charge‐storage mechanism remains elusive. Herein, we elucidate this mechanism through the molecular design of a conjugated carbonyl compound ( DHB ) and its oxidized‐derivative ( o‐DHB ). While DHB undergoes a 4‐electron storage process, strategic oxidation expands this to a reversible 6‐electron process in o‐DHB . Remarkably, the resultant Zn||o‐DHB battery delivers an exceptional specific capacity of 323 mAh g − 1 even at a high current density of 5 A g − 1 and retains 71% of its capacity after 3,500 cycles, outperforming most reported organic AZIBs. Combined electrochemical and spectroscopic comparative analyses reveal that the high oxidation potential of terminal ortho‐hydroxyl groups (C─O─H) in DHB inhibits their full utilization. In contrast, o‐DHB enables the reversible reduction of both ortho‐ and para‐C = O groups at relatively low potentials to form C─O─Zn bonds, confirming Zn 2+ migration—not H + insertion—as the dominant charge‐storage mechanism. Theoretical calculations further demonstrate that the oxidation engineering lowers the LUMO energy and narrows the HOMO–LUMO gap of o‐DHB , promoting electron delocalization, enhancing conductivity, and accelerating reaction kinetics. This work provides profound mechanistic insights and establishes a molecular design principle for developing high‐performance organic cathodes for AZIBs.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/69f04e7d727298f751e72593https://doi.org/10.1002/adfm.75643
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Molecular Engineering of π‐Conjugated C═O/C═N Cathode for Ultrastable Organic Zinc‐Ion Batteries2026
  2. 2Mitigating Dissolution and Kinetics Limitations in Aqueous Zinc‐Organic Batteries via a Conjugated Scaffold Integrated With Stable Nitroxyl Radicals2026
  3. 3Bipolar Conjugated Cathodes Reinforced by a Hydrogen-Bonding Network for Durable Aqueous Zinc-Ion Batteries2026
  4. 4Revealing Hydrogen Bond Effect in Rechargeable Aqueous Zinc‐Organic Batteries2024 · 11 citations
  5. 5Revealing Hydrogen Bond Effect in Rechargeable Aqueous Zinc‐Organic Batteries2024 · 30 citations