Skip to main navigation Skip to search Skip to main content

Redefining ·CO3 Formation Chemistry: Zundel-like Switches Drive Carbonate-·OH Interfacial Reactivity

  • Jiarong Liu
  • , Xiaohua Yang
  • , Jinkai Gu
  • , Lili Qiu
  • , Ling Liu
  • , An Ning
  • , Hao Li
  • , Jinggang Lan*
  • , Joseph S. Francisco*
  • , Xiuhui Zhang*
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Chifeng University
  • CAS - Research Center for Eco-Environmental Sciences
  • University of Chinese Academy of Sciences
  • Shenzhen University of Advanced Technology
  • Department of Mathematics, University of Pennsylvania

Research output: Contribution to journalArticlepeer-review

Abstract

The formation of carbonate radicals (·CO3) via carbonate-hydroxyl radicals (·OH) reaction is the cornerstone of environmental oxidative cycles, yet its molecular mechanism has long been limited to homogeneous bulk-phase paradigms, a view that conflicts with enhanced reactivity in interfacial-rich systems. Characterizing these processes is hindered by the transience of ·OH, system heterogeneity, and the inability to resolve in situ pathways. Herein, we combine ab initio molecular dynamics and machine learning molecular dynamics to redefine ·CO3 formation chemistry. We reveal that the gas–liquid interfacial reaction dominates ·CO3 generation, mediated by two proton-coupled electron transfer pathways (concerted proton–electron transfer and stepwise proton-transfer followed by electron-transfer). Critical to this reactivity are Zundel/Zundel-like hydrogen-bonded configurations, which act as “molecular switches” to trigger rapid reactions, enabled by the intrinsic interfacial enrichment of ·OH (85.2%) and HCO3 (92.2%). The interfacial pathway outperforms bulk reactions in ·CO3 formation, with (90 ± 6.13)% yield [vs (80 ± 8.94)% in bulk] and approximately 100-fold faster rate [(1.15 ± 0.01) × 1011 M–1 s–1 vs (9.63 ± 0.03) × 108 M–1 s–1], attributed to the partial solvation of ·OH at the interface. Additionally, ·OH reacts with bulk-phase CO32– via heterogeneous electron transfer (bulk → interface), yielding a rate approximately 10-fold faster ·CO3 formation than homogeneous bulk reactions. These findings challenge bulk-centric paradigms, establish the interface as the dominant ·CO3 source, and provide actionable insights for optimizing advanced oxidation processes, water remediation, and catalyst design by leveraging interfacial microenvironments.

Original languageEnglish
Pages (from-to)25501-25509
Number of pages9
JournalJournal of the American Chemical Society
Volume148
Issue number25
DOIs
Publication statusPublished - 1 Jul 2026
Externally publishedYes

Fingerprint

Dive into the research topics of 'Redefining ·CO3 Formation Chemistry: Zundel-like Switches Drive Carbonate-·OH Interfacial Reactivity'. Together they form a unique fingerprint.

Cite this