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Electrostatic Confinement of Plasma Electrons by Water Microdroplets Enables Dinitrogen Oxidation

  • Xiuquan Jia
  • , Jiangqi Niu
  • , Jianhan Wu
  • , Zhenyuan Zhang
  • , Zhendong Luo
  • , Shaowei Chen
  • , Liping Cao
  • , Shijie Xian
  • , Zhenming Li
  • , Yifan Yang
  • , Jichun Jiang
  • , Xuke Chen
  • , Sheng Bi
  • , Lei Hua
  • , Ningbo Geng
  • , Jiping Chen
  • , Huanhao Chen
  • , Joseph S. Francisco*
  • , Xiaolei Fan*
  • , Feng Wang*
  • *Corresponding author for this work

Research output: Journal PublicationArticlepeer-review

Abstract

Nonthermal plasma (NTP) offers exceptional theoretical energy efficiency for nitrogen fixation, yet realizing this potential in practice remains a formidable challenge due to rapid energy dissipation, particularly through low-energy electrons that typically lose their energy as heat. Conventional plasma modulation largely relies on mass-transfer-dominated frameworks, lacking mechanisms to selectively channel these electrons into productive chemical pathways. Here we demonstrate that positively charged water microdroplets constitute active electrostatic confinement interfaces to harvest and re-energize low-energy plasma electrons. Under minimized microdroplet charge relaxation, plasma energy becomes spatially and energetically confined at the droplet–air interface, promoting interfacial water splitting and triggering a distinctive •OH-mediated dinitrogen (N2) oxidation pathway at reduced discharge voltage. Such energetic regulation boosts dinitrogen oxidation rates 60-fold while cutting power consumption by two-thirds, achieving a nitrate energy efficiency of 1.65 μmol J–1 that rivals electrolysis-based industrial benchmarks. These results reveal an unrecognized chemical role of ubiquitous microdroplets as plasma energy concentrators and establish an interfacial electrostatic confinement mechanism for directing NTP reactivity, with implications for nitrogen fixation chemistry, atmospheric chemistry, and plasma catalysis.

Original languageEnglish
Pages (from-to)23941-23952
Number of pages12
JournalJournal of the American Chemical Society
Volume148
Issue number23
DOIs
Publication statusPublished - 17 Jun 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

ASJC Scopus subject areas

  • Catalysis
  • Biochemistry
  • General Chemistry
  • Colloid and Surface Chemistry

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