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Updated: Apr 11, 2026

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids
Published on: December 4, 2017
Nanobubble nucleation dynamics in reacting microdroplets: Insights from confocal laser scanning microscopy and
Haichang Yang1, Binglin Zeng2, Yixin Zhang3
1organization=State Key Laboratory of Coking Coal Resources Green Exploitation, addressline=China University of Mining and Technology, city=Xuzhou 221116, country=China; organization=Department of Chemical and Materials Engineering, addressline=University of Alberta, city=Edmonton T6G 1H9, country=Canada; organization=Chinese National Engineering Research Center of Coal Preparation and Purification, addressline=China University of Mining and Technology, city=Xuzhou 221116, country=China.
Abstract:
Gas-evolving interfacial reactions in microdroplets underpin processes in catalysis, energy conversion, and microreactor technologies, yet the principles of nanobubble nucleation remain unclear. Here, we integrate confocal laser scanning microscopy with coarse-grained molecular dynamics simulations to elucidate hydrogen nanobubble formation during base-catalyzed reactions of liquid organic hydrogen carrier (LOHC) droplets with aqueous NaOH. We reveal a competition-controlled nucleation mechanism governed by gas production rate, asymmetric solubility in droplet and surrounding phases, and water-gas interfacial tension. Nucleation occurs only when local gas concentrations exceed a critical threshold that is largely independent of production rate but strongly influenced by gas solubility in two phases. High production rates shorten induction times and shift nucleation toward the LOHC-water boundary, whereas increased solubility in LOHC or water suppresses nucleation, raising the critical threshold or extracting gas from the droplet. Reduced interfacial tension lowers the nucleation barrier, accelerates onset, and favors interfacial nucleation. These findings establish principles for controlling gas evolution in reactive emulsions, offering design guidelines for interfacial microreactors and nanobubble-enabled catalytic systems.

