4.7 Article

Task-specific polymeric membranes to achieve high gas-liquid mass transfer

Journal

CHEMOSPHERE
Volume 313, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2022.137603

Keywords

Gass liquid mass transfer; Polymeric membranes; Zeolitic imidazolate framework (ZIF-8); Polyvinyl pyrrolidone; Syngas fermentation

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Polyimide (P84)-based polymeric membranes were fabricated and used as spargers in the bubble column reactor (BCR) to enhance the gas-liquid mass transfer (GL-MT) rate of oxygen in water. Incorporating polyvinyl pyrrolidone (PVP) as a porogen and a Zeolitic Imidazolate Framework (ZIF-8) resulted in high porosity and hydrophobicity in the membranes, leading to increased GL-MT efficiency. The study demonstrated that ZIF-8 based membranes have the potential to improve dissolved oxygen concentration in BCR through bubble size reduction, increased bubble number, and improved hydrophobicity.
In the current study, Polyimide (P84)-based polymeric membranes were fabricated and used as spargers in the bubble column reactor (BCR) to get a high gas-liquid mass transfer (GL-MT) rate of oxygen in water. Different polymeric membranes were fabricated by incorporating polyvinyl pyrrolidone (PVP) as a porogen and a Zeolitic Imidazolate Framework (ZIF-8) to induce high porosity and hydrophobicity in the membranes. The GL-MT ef-ficiency of membranes was evaluated by measuring the overall volumetric mass transfer coefficient (kLa) of oxygen in air. The kLa of O2 (in air) was measured by supplying the gas through a fixed membrane surface area of 11.94 cm2 at a fixed gas flow rate of 3L/min under atmospheric pressure. The results revealed that adding porogen and ZIF-8 increased the porosity of the membranes compared to the pure polymeric membranes. In comparison, the ZIF-8 (3 wt%) based membrane showed the highest porosity (80%), hydrophobicity (95 degrees contact angle) and kLa of oxygen in air (241.2 h- 1) with 78% saturation in only 60 s. ZIF-8 based membranes showed the potential to increase the amount of dissolved oxygen in BCR by reducing the bubble size, increasing the number of bubbles, and improving the hydrophobicity. The study showed that ZIF-8 based membrane diffusers are ex-pected to produce high GL-MT in microbial syngas fermentation. To the best of our knowledge, this is the first study on the fabrication and application of polymeric membranes for GL-MT applications. Further research should be conducted under real fermentation conditions to assess the practicality of the system to support substrate utilization, microbial growth, and product formation.

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