. Scientific Frontline: Desalination & Selective Metal Recovery

Thursday, July 30, 2026

Desalination & Selective Metal Recovery

Shihong Lin, associate professor of civil and environmental engineering at Rice.
Photo Credit: Courtesy of Rice University

Scientific Frontline: Extended "At a Glance" Summary
: Electrochemical Ion Pumping

The Core Concept: A novel electrochemical platform that simultaneously desalinates industrial wastewater and selectively recovers valuable dissolved heavy metals in a single, continuous process.

Key Distinction/Mechanism: Unlike reverse osmosis, which lacks ion selectivity, or chemical precipitation, which generates hazardous sludge, this method utilizes electrochemical ion pumping (EIP). It replaces physical solution switching with rapid electrical circuit changes, using electrode potential as a programmable control parameter to dictate precisely whether a specific metal ion passes into a receiving stream or is captured on the electrode.

Origin/History: Developed by researchers at Rice University and Vanderbilt University, led by Shihong Lin, and published in Nature Water in July 2026. This platform builds upon three prior foundational advances by the team regarding the theoretical framework and architecture of EIP.

Major Frameworks/Components:

  • Programmable Electrode Potential: The adjustment of voltage to highly specific, stable ranges to selectively trap target metals, such as copper, while allowing other ions, such as sodium and nickel, to pass through.
  • Electrochemical Ion Pumping (EIP): A process utilizing specialized electrodes as temporary holding stations to move ions continuously in one direction from a wastewater feed to a receiving stream.
  • Rapid Circuit Alternation: The replacement of conventional electrosorption's physical solution switching with electrical modulation to maintain continuous directional ion flow.

Branch of Science: Environmental Engineering, Electrochemistry, Materials Science, and Physical Chemistry.

Future Application: Deployment in electronics manufacturing and metal processing facilities to treat complex industrial brines, allowing for simultaneous water reuse and the extraction of high-purity, economically valuable metals from waste streams.

Why It Matters: By isolating target metals from mixed brine streams without the need for additional chemical agents, this technology mitigates the burden of hazardous waste management, reduces downstream purification costs, and promotes a circular economy for valuable industrial resources.

Industrial wastewater from electronics manufacturing, metal processing, and other sectors often contains two difficult pollutants at once: high levels of salt and toxic heavy metals. Current treatment methods typically address those problems separately, creating costly, complex systems that can produce hazardous brines or metal-laden sludge. Now, researchers at Rice University and Vanderbilt University have created an electrochemical platform that could do both jobs at once.

A team led by Shihong Lin, associate professor of civil and environmental engineering at Rice, has shown that electrochemical ion pumping, or EIP, can be programmed to desalinate wastewater while selectively recovering dissolved metals, such as copper. The approach, published in Nature Water, could offer a new path toward water reuse and resource recovery from industrial brines. Longqian Xu, a postdoctoral researcher at Rice, is the study’s first author.

“Conventional desalination technologies, such as reverse osmosis, can remove salts, but they do not selectively separate valuable or toxic metal ions from background salts,” said Lin, who is also part of the research team at the Rice WaTER Institute. “Meanwhile, chemical precipitation can remove metals, but it relies on added chemicals and often produces hazardous sludge.”

The key innovation is using electrode potential as a programmable control parameter that determines whether a metal ion passes into the receiving stream or remains captured on the electrode. EIP works by moving ions from one water stream into another. It does this with special electrodes that act almost like temporary holding stations: they capture ions from the wastewater and then release them into a separate receiving stream.

The new study builds on three earlier advances by Lin and his collaborators: the initial demonstration of EIP and its theoretical framework, both published in Nature Water, and a ring-shaped EIP architecture for redox-free desalination, published in Nature Chemical Engineering. The latest work extends the platform from desalination to simultaneous desalination and selective metal recovery.

“Conventional electrosorption systems typically require the feed and receiving solutions to be switched between adsorption and regeneration steps,” Lin said. “Our method replaces that physical solution switching with rapid changes in the electrical circuit, allowing ions to move continuously in one direction through the system.”

Because the system moves only small amounts of ions during each short cycle, the researchers maintain the electrode potential within a very narrow and stable range. That stability is important because it gives them more precise control over what happens at the electrode surface.

In one mode, the system removed both sodium and copper ions from the wastewater and moved them into the receiving stream. In this case, the system acted like a desalination process only, and copper did not build up on the electrode.

But when the researchers shifted the electrode potential below the point where copper begins to react, the system behaved differently. It still removed salt from the water, but it also selectively trapped copper on the electrode surface.

“In tests with synthetic wastewater containing sodium and copper, the system removed 90% of the salt while keeping nearly all of the copper on the electrode instead of sending it into the brine,” Lin said.

The researchers also tested the system with a more complex mixture containing copper, nickel, and sodium. Using a five-electrode EIP stack, they tuned the electrode voltage so that copper would be captured while nickel and sodium would continue moving through the system.

After four hours, the system removed 85% of the salt and more than 92% of both copper and nickel from the wastewater. But the metals ended up in different places: nearly all of the copper stayed on the electrode, while almost all of the removed nickel moved into the receiving stream. The copper collected on the electrode was about 96% pure relative to nickel.

“Our results showed that EIP can be tuned to decide where different ions go during treatment,” Lin said. “Some metals can be captured on the electrode, while salts and other ions can continue through the normal desalination pathway.”

These results could make the technology especially useful for industrial wastewater, where companies often need to both reuse water and recover valuable metals. By keeping target metals out of mixed brine streams, the approach could reduce downstream purification and hazardous waste management burdens and, after electrode regeneration, produce a metal-enriched recovery stream.

Funding: This research was supported by the National Science Foundation (CBET 2530333) and the Office of Naval Research (N000142612042).

Published in journal: Nature Water

TitleSimultaneous desalination and selective metal recovery enabled by potential-regulated electrochemical ion pumping

Authors: Longqian Xu, Oluwatosin A. Bello, Shawon Sk Md Ali Zaker, Bing Zhao, and Shihong Lin

Source/CreditRice University | Alexandra Becker

Edited by: Scientific Frontline

Reference Number: eng073026_01

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