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Updated: Sep 7, 2026

Ammonia Synthesis at Low Pressure
Published on: August 23, 2017
Nanobubble Radical-Driven N2 Hydrogenation for Sustainable Ammonia Production: A Haber-Bosch Alternative under Mild
Shangkun Jin1,2, Ruiyi Zhang1,2, Lan Chen1
1CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing100190, P. R. China.
Abstract:
Ammonia is a cornerstone for global agriculture and promising renewable energy storage, yet its production through the conventional Haber-Bosch process accounts for nearly 2% of worldwide energy consumption, underscoring the urgent need for sustainable alternatives. Recent advances in interfacial chemistry, such as droplet-assisted reactions, have demonstrated unique reactivity in confined environments under mild conditions. However, many of these approaches rely on hydroxyl radicals and exhibit limited selectivity toward oxygen-free hydrogen-rich products like ammonia. Here, we report a catalyst-free nitrogen fixation strategy that achieves high ammonia selectivity (∼60%) using nanobubble-driven radical chemistry at ambient temperature and pressure. By harnessing the cavitation-decoupled N2/H2 nanobubbles collapsing in water, our system enables spontaneous nitrogen fixation with an optimized ammonia yield of ∼0.24 mg·L-1 achieved through 30 min nanobubble generation and subsequent 24 h standing, driven primarily by hydrogen radicals in a mechanism reminiscent of confined implosion. This collapse generates localized transient extremes of temperature and pressure, which promotes the formation of reactive hydrogen radicals. The high chemical potential of these radicals (∼2.3 eV) directly supplies the energy required for N≡N bond activation, eliminating the need for catalysts and external energy input. Beyond offering a scalable and energy-efficient route to green ammonia synthesis, this study provides mechanistic insight into prebiotic nitrogen-fixation pathways. The approach aligns with the global transition toward decentralized, low-carbon chemical production and contributes to a sustainable future for both energy and agriculture.
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