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February 8, 2026Angewandte Chemie International Edition2 citationsOpen Access

Catalyst‐Free Ammonia Formation at the Gas‐Liquid Interface Enables Selective Nitrogen‐Saccharide Association Under Abiotic Conditions

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SMShanshan MaBSBo SuiHYHang Yuan

Key Points

  • Investigate the catalyst-free formation of ammonia at gas-liquid interfaces and its implications for nitrogen-sugar association under abiotic conditions.
  • Utilized microdroplet technology for ammonia formation at gas-liquid interfaces.
  • Employed mass spectrometry to detect saccharide-ammonium adducts.
  • Conducted ion chromatography and UV–Vis spectroscopy for ammonia verification.
  • Performed quantitative isotope-dilution mass spectrometry to determine ammonia formation rates.
  • Executed density functional theory calculations to rationalize findings.
  • Achieved a quantified NH3 formation rate of 8.35 × 10 −4 mg·h −1 in microdroplet environments.
  • Observed specific adduct formation absent in argon control experiments.
  • Identified a hydrogen-radical-mediated nitrogen hydrogenation pathway involving N2H4.
  • Demonstrated that smaller microdroplet sizes enhanced ammonium adduct formation while suppressing alkali metal adducts.

Abstract

ABSTRACT Ammonia (NH 3 ) is one of the quintessential building blocks in the renowned nitrogen cycle, which sustains life activities. Probing the abiotic formation of ammonia is vital to both understanding the prebiotic nitrogen incorporation, and exploring novel opportunities in its synthetic acquisition. Here, we report a catalyst‐free process for in situ ammonia formation at the gas‐liquid interface of aqueous microdroplets. Specifically, saccharide molecular‐probe solution through dinitrogen nebulization generated saccharide‐ammonium adducts M+NH 4 + in mass spectrometry detection that were absent under argon‐mediated control experiments, while ion chromatography and UV–Vis spectroscopy independently verified ammonia generation exclusively in aqueous microdroplet. Quantitative isotope‐dilution mass spectrometry determined an overall NH 3 formation rate of 8.35 × 10 −4 mg·h −1 in the microdroplet spray region. Spin‐trapping, electron paramagnetic resonance, radical‐scavenging, and intermediate‐derivatization experiments, supported by electric‐field‐assisted theoretical calculations, further indicate a hydrogen‐radical‐mediated, stepwise nitrogen hydrogenation pathway involving N 2 H 4 . Additionally, saccharides, decreasing microdroplet size enhances ammonium adduct formation while suppressing alkali‐metal adducts, a trend rationalized by electric‐field‐dependent stabilization of M+NH 4 + over M+Na + and M+K + , as supported by density functional theory calculations. These findings support a microdroplet‐electric‐field‐driven ambient ammonia formation at the gas‐liquid interfaces, and provide mechanistic insights into prebiotic nitrogen‐saccharide association under abiotic conditions.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/698827f00fc35cd7a8846ffdhttps://doi.org/10.1002/anie.202524389
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