Janus Channel with Photothermal Effect for Efficient Oil−Water Separation
Yajuan Peng, Kangquan Yang, Zhuoyue Tian, Xiufang WenAbstract
To address the difficulties in demulsification and coalescence, as well as the high flow resistance caused by viscous oils in the separation of stable emulsified oil-water systems, this study designed a three-dimensional MoS2@Fe3O4 particulate channel integrating photothermal responsiveness with Janus wettability to achieve efficient separation. Hydrophilic and hydrophobic MoS2@Fe3O4 particles were synthesized via a hydrothermal method and assembled into a Janus channel. Under light irradiation, the MoS2@Fe3O4-based channel generated localized heating via its efficient photothermal conversion capability, significantly reducing the viscous resistance of high-viscosity oil and promoting droplet coalescence, demulsification, and separation. The surface temperature of the material rapidly increased to 113.9 °C under 2 sun irradiation. For a high-viscosity industrial water-in-oil emulsion (viscosity 691.57 mPa s at 20 °C), the separation flux increased from 507 ± 14 L m−2 h−1 under no-light conditions to 860 ± 31 L m−2 h−1 under illumination, corresponding to an enhancement of approximately 70%, while the separation efficiency improved from 99.2 ± 0.03% to 99.4 ± 0.05%. For a surfactant-stabilized toluene-in-water emulsion, light irradiation similarly enhanced performance, increasing the flux from 4947 ± 144 L m−2 h−1 to 5393 ± 43 L m−2 h−1, while the separation efficiency from 99.7 ± 0.03% to 99.8 ± 0.06%. Furthermore, over 20 cycles of separation, the efficiency remained consistently above 99% for the toluene-in-water emulsion, and as high as 95.2% for the high-viscosity industrial water-in-oil emulsion, indicating satisfactory operational stability. The photothermal-Janus synergistic separation system developed in this study provides an effective strategy for the efficient separation of stable, high-viscosity emulsified oil-water systems.