Emulsions are among the most stubborn mixtures in industrial water treatment. Tiny droplets of oil dispersed in water, or water dispersed in oil, resist conventional filtration because the droplets are often smaller than the pores of most membranes and are stabilized by surfactants that refuse to let the phases part ways. For decades, engineers have coped with this problem by treating each type of emulsion separately: a hydrophilic membrane for oil-in-water mixtures, a hydrophobic one for water-in-oil systems, and a processing line that handles them one after the other. Now a team of Chinese researchers has broken that sequential constraint, reporting in Nature Water a single membrane device that can synchronously and continuously separate both opposing emulsion types at the same time, with two-phase separation efficiency exceeding 99.9 percent.
The study, led by Wenjun Zhang of the Frontiers Science Center for Deep Ocean Multispheres and Earth System at Ocean University of China, together with colleagues at the University of Shanghai for Science and Technology and Shandong University, introduces what the authors call a heterogeneous wetting membrane, or heterowettability membrane. Unlike conventional membranes, which present a single uniform wettability to the fluid they contact, this membrane features spatially patterned regions of hydrophilic and hydrophobic surface chemistry arranged side by side. The design is paired with a bidirectional gradient contraction channel module, and it is this combination that allows one device to do the work of two.
The central insight of the work lies in how the two components divide their labor. The gradient contraction channel is not merely a piece of plumbing. As fluid flows through a channel whose cross-section narrows progressively, the velocity field becomes non-uniform, generating a spatially varying shear stress across the flow. That non-uniform shear field acts directly on the emulsion droplets, deforming them and gradually destabilizing the surfactant shells that keep them intact. In effect, the channel performs a gentle, continuous demulsification before the fluid ever reaches the membrane surface, priming the droplets to coalesce and release their contents at the membrane interface.
Once the partially demulsified dispersion arrives at the membrane, the patterned wettability takes over. Droplets of the dispersed phase encounter surface regions whose chemistry matches their own continuous phase affinity, and the resulting surface energy gradients drive them to migrate in opposite directions across the membrane. Water droplets in an oil continuous phase are drawn toward hydrophilic zones, while oil droplets in water are pulled toward hydrophobic zones. Coupled with the shear-induced demulsification and directional phase transport, this wettability-guided routing allows oil-in-water and water-in-oil emulsions to be processed simultaneously and in parallel, each yielding its own purified phase.
A critical challenge in any such dual-function design is preventing the two phases from crossing into each other’s collection pathways, a failure mode known as continuous phase crossover. The researchers addressed this with what they describe as a pressure field–Laplace anchoring mechanism. By carefully controlling the transmembrane pressure and exploiting the Laplace pressure barriers that arise at the boundary between wetting and non-wetting regions of the membrane, the device suppresses unwanted crossover of the continuous phases. In essence, the capillary pressure required to force a non-wetting liquid through a pore region acts as a self-regulating valve, keeping each phase confined to its designated pathway without the need for external actuation or switching.
The team’s experimental characterization, documented across six main figures and an extensive supplementary package of more than sixty figures and sixteen tables, probed the interfacial restructuring and retained fluid states on the membrane during operation. Contact angle measurements captured in real-time video show directed water transport along the heterogeneous wetting interface, driven by surface energy gradients. Dynamic observations of the oil-water interface on both hydrophilic and hydrophobic membrane regions under varying transmembrane pressure reveal how the fluid states are maintained and how the phase-selective droplet transfer is controlled by the interplay of membrane wettability and channel geometry.
Perhaps the most subtle finding of the study concerns the dual role of shear stress. Shear is essential for demulsification, breaking droplets apart so their phases can be separated. But excessive shear at the membrane surface risks re-emulsification, tearing newly coalesced phases back into fine droplets and undoing the separation. The researchers mapped this trade-off in detail, identifying the operating window in which the gradient contraction channel delivers enough shear to destabilize droplets while the membrane interface experiences conditions that favor coalescence and phase transport rather than droplet re-formation. This balance, they show, is what sustains the device’s remarkable efficiency over extended operation.
The practical implications are considerable. Anti-fouling performance and long-term stability, the two metrics that most often doom membrane technologies in real wastewater service, were both notably enhanced in the new system. Because the opposing emulsion streams are demulsified before contact with the membrane and routed along chemically matched pathways, foulants are less likely to accumulate and clog the pores. The authors also report a techno-economic assessment supported by collaborators at Ocean University of China, suggesting the team has begun to evaluate not just laboratory performance but the commercial viability of the approach. For industries ranging from petroleum refining to food processing and textile manufacturing, where both emulsion types arise in the same facility and are currently handled by separate, sequential treatment trains, a single device that purifies both streams continuously could simplify plant design and reduce operating costs.
The work also builds on, and departs from, a rich lineage of bioinspired separation research. Prior advances include superwetting nanofiber membranes, CO2-responsive switchable membranes, Janus membranes with asymmetric affinities, liquid-infused aerogel systems capable of on-demand emulsification and demulsification, and a Janus channel of membranes reported in Science in 2024 that achieved concurrent oil and water recovery from emulsions. What distinguishes the new study is its explicit targeting of opposing emulsions within a single synchronous process, achieved not by switching a membrane’s properties over time but by distributing different wetting behaviors across space and letting the channel geometry do the rest. The result, the authors write, establishes a new paradigm for synchronous separation and parallel processing of opposite emulsions, paving the way for efficient integrated oil-water separation technology.
Challenges remain before the system can be scaled from laboratory modules to industrial service. Membrane fabrication must be reproducible at large areas, the patterned wettability must withstand years of exposure to surfactants, solvents and temperature swings, and the pressure operating window must tolerate the variability of real waste streams. Yet the fundamental demonstration is striking: a membrane that treats wettability not as a fixed property to be chosen but as a design variable to be patterned, working in concert with fluid mechanics rather than against it. If the reported efficiencies and stability hold up at scale, the humble membrane may finally be ready to handle the full, messy spectrum of emulsified oily waste in one continuous pass.
Subject of Research: A patterned heterowettability membrane with a gradient contraction channel for synchronous, parallel separation of opposing oil-in-water and water-in-oil emulsions.
Article Title: Synchronous and parallel separation of opposing emulsions enabled by a heterowettability membrane
Article References: Zhang, W., Zhang, D., Guan, Y., Li, Y., Geng, S., Li, B., Chen, D., Wang, J., Bao, M., & Wang, Z. (2026). Synchronous and parallel separation of opposing emulsions enabled by a heterowettability membrane. Nature Water. https://doi.org/10.1038/s44221-026-00703-z
Image Credits: AI Generated
DOI: 10.1038/s44221-026-00703-z
Keywords: heterowettability membrane, emulsion separation, oil-water separation, demulsification, shear-induced demulsification, water-in-oil emulsion, oil-in-water emulsion, membrane technology, anti-fouling, Laplace pressure, directional liquid transport, water purification
Cite Scienmag News
Violet Maxwell. (September 12, 2026). One Membrane, Two Emulsions: Heterowettability Design Splits Opposite Oil-Water Mixtures at Once. Scienmag. https://scienmag.com/one-membrane-two-emulsions-heterowettability-design-splits-opposite-oil-water-mixtures-at-once/
Violet Maxwell. "One Membrane, Two Emulsions: Heterowettability Design Splits Opposite Oil-Water Mixtures at Once." Scienmag, 12 September 2026, https://scienmag.com/one-membrane-two-emulsions-heterowettability-design-splits-opposite-oil-water-mixtures-at-once/. Accessed 12 September 2026.
Violet Maxwell. "One Membrane, Two Emulsions: Heterowettability Design Splits Opposite Oil-Water Mixtures at Once." Scienmag. September 12, 2026. https://scienmag.com/one-membrane-two-emulsions-heterowettability-design-splits-opposite-oil-water-mixtures-at-once/

