CO<sub>2</sub> hydrate nucleation study: novel high-pressure microfluidic devices.

Dehghani, Peyman; Sinquin, Anne; Gland, Nicolas; Lécolier, Eric; Ruffine, Livio; Tang, Anh Minh · Lab Chip · 2025

basic_science · Level V

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Abstract

This study presents the development and application of a novel high-pressure microfluidic system for investigating CO<sub>2</sub> hydrate nucleation and growth, with applications for carbon capture and storage (CCS) technologies. Two distinct microchip geometries-a capillary channel chip (serpentine-shaped) and an advanced droplet trap chip- were respectively designed and evaluated. These microchips enable the generation, trapping, and observation of CO<sub>2</sub> droplets or bubbles within aqueous systems under static and dynamic conditions. The capillary channel chip allows droplet storage in a single serpentine channel, whereas the droplet trap chip offers superior immobilization and control, preventing droplet/bubble displacement during CO<sub>2</sub> hydrate formation. High-resolution optical imaging, coupled with precise pressure and temperature regulation and control, facilitated real-time visualization of CO<sub>2</sub> hydrate crystallization at CO<sub>2</sub>-water interfaces under varying temperature and pressure conditions. Experimental results reveal the influence of geometry, flow dynamics, and hydrodynamics on hydrate morphology and growth. The high-pressure microfluidic setup provides an adaptable and scalable approach for studying hydrate behavior, offering valuable insights for investigating CO<sub>2</sub> storage in geological formations.