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Hot spots make purifying salt water super efficient

(Credit: Getty Images)

A solar-powered way to purify salt water with sunlight and nanoparticles is even more efficient than first thought, a new study reports.

Simply adding inexpensive plastic lenses to concentrate sunlight into “hot spots” boosted the efficiency of a solar-powered desalination system by more than 50 percent, researchers say.

“The typical way to boost performance in solar-driven systems is to add solar concentrators and bring in more light,” says Pratiksha Dongare, a graduate student in applied physics at Rice University’s Brown School of Engineering and co-lead author of a new paper in PNAS.

“The big difference here is that we’re using the same amount of light. We’ve shown it’s possible to inexpensively redistribute that power and dramatically increase the rate of purified water production.”

solar-powered desalination set-up
(Credit: Pratiksha Dongare/Rice)

Clean water

In conventional membrane distillation, hot, salty water is flowed across one side of a sheet-like membrane while cool, filtered water flows across the other. The temperature difference creates a difference in vapor pressure that drives water vapor from the heated side through the membrane toward the cooler, lower-pressure side.

Scaling up the technology is difficult because the temperature difference across the membrane—and the resulting output of clean water—decreases as the size of the membrane increases.

The new “nanophotonics-enabled solar membrane distillation” (NESMD) technology addresses this by using light-absorbing nanoparticles to turn the membrane itself into a solar-driven heating element.

Dongare and colleagues, including study co-lead author Alessandro Alabastri, coat the top layer of their membranes with low-cost, commercially available nanoparticles designed to convert more than 80 percent of sunlight energy into heat.

The solar-driven nanoparticle heating reduces production costs and engineers are working to scale up the technology for applications in remote areas that have no access to electricity.

Concentrated light

Director of Rice’s Laboratory for Nanophotonics Naomi Halas and research scientist Oara Neumann, both coauthors of the new study, first demonstrated the concept and particles used in the technology in 2012. In the new study, the scientists found they could exploit an inherent and previously unrecognized nonlinear relationship between incident light intensity and vapor pressure.

Alabastri, a physicist and research assistant professor in the electrical and computer engineering department, used a simple mathematical example to describe the difference between a linear and nonlinear relationship.

“If you take any two numbers that equal 10—7 and 3, 5 and 5, 6 and 4—you will always get 10 if you add them together. But if the process is nonlinear, you might square them or even cube them before adding. So if we have 9 and 1, that would be 9 squared, or 81, plus one squared, which equals 82. That is far better than 10, which is the best you can do with a linear relationship.”

In the case of NESMD, the nonlinear improvement comes from concentrating sunlight into tiny spots, much like a child might with a magnifying glass on a sunny day. Concentrating the light on a tiny spot on the membrane results in a linear increase in heat, but the heating, in turn, produces a nonlinear increase in vapor pressure. And the increased pressure forces more purified steam through the membrane in less time.

“We showed that it’s always better to have more photons in a smaller area than to have a homogeneous distribution of photons across the entire membrane,” Alabastri says.

“The efficiencies provided by this nonlinear optical process are important because water scarcity is a daily reality for about half of the world’s people, and efficient solar distillation could change that.” Halas says.

“Beyond water purification, this nonlinear optical effect also could improve technologies that use solar heating to drive chemical processes like photocatalysis.”

For example, LANP is developing a copper-based nanoparticle for converting ammonia into hydrogen fuel at ambient pressure.

Halas is a professor of electrical and computer engineering, a professor of chemistry, bioengineering, physics and astronomy, and materials science and nanoengineering and director of Rice’s Smalley-Curl Institute.

The National Science Foundation, the Air Force Office of Scientific Research, the Welch Foundation, and the Smalley-Curl Institute funded the work. Dongare, Alabastri, Neumann, Nordlander, and Halas are co-inventors on a provisional patent relating to the research.

Source: Rice University

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Prototype could offer fresh water where wells run salty

Local people collect water from a muddy waterhole in 2006 in San Marcos Tlacoyalco. The Tehuacan Valley South-East of Mexico City has long experienced severe water shortages. Drought and climate change have contributed to this but recent industrial growth has also strained the very limited ground water resource. Water resources in the area are largely based on a weekly delivery by truck as well as collecting water from small pools known as Jagueys. (Credit: Brent Stirton/Getty Images)

A solar-powered distillation unit could desalinate water in arid coastal areas where wells are so depleted that seawater leaches into the freshwater supply.

The prototype can distill 150 liters (40 gallons) of water per day and can scale up to 3,000 liters (793 gallons). That’s equal to five truckloads of fresh water and a much more eco-friendly solution to the problem of insufficient access to fresh water, says Jose Alfaro, an assistant professor at the University of Michigan’s School for Environment and Sustainability.

“We developed this product with a particular community in mind, but we realized that it would be good for a number of communities,” he says.

Circular economy

The researchers designed the system for Tastiota, a small village in the Sonoran desert, which had been trucking in its water from a source 100 kilometers (62 miles) away.

After distillation, what’s left is brine that can be converted to salt and sold to other businesses nearby, creating a circular economy.

Other markets for the desalination unit include the global sunbelt located several degrees above and below the equator and hotels in coastal communities, Alfaro says.

“Hotels could use this to reduce their impact on the areas they are serving. A lot of the locations of these hotels are in fragile basins at risk of getting saline intrusion.”

Sustainable solution

Alfaro and Iulia Mogosanu, who graduated in the spring with an MBA, and Pablo Taddei, who graduated with a master’s degree in sustainable systems in 2017, wanted to create a sustainable solution to water scarcity issues in coastal communities where arid conditions, rising temperatures, and decreased precipitation due to climate change exacerbate the problem.

Over the past year, the team developed a proprietary process to remove salt from local water sources by leveraging solar radiation to power an innovative desalination technology. Early analysis indicates that the combination of concentrated solar power and single-stage distillation will provide a cost-effective and easy solution to water scarcity issues.

What makes this solution truly sustainable is the business component, the researchers say. This technology results in both a sellable byproduct, by processing brine into salt, and an improved capacity for coastal fishers to bring their catch to larger markets. This significantly improves the technology’s financial viability and provides a true market solution.

Device makes clean water with paper and sunlight

Taddei is a native of Hermosillo County in Mexico—a region that is along the Sonora coast. Hermosillo, as with many coastal communities, has been experiencing severe water scarcity due to saline contamination of the wells, which low precipitation makes worse. Taddei was interested in finding a sustainable solution to this problem and began probing ideas that would desalinate the abundant source of ocean water.

“I realized that the potential of such a solution had far-reaching implications globally. It was clear to me that the commercial potential of this idea was scalable to different conditions in different regions of the world,” Mogosanu says.

Mat ‘baits, hooks, and destroys’ pollution in water

Alfaro traveled to Costa Rica last month to determine if there were communities that might benefit from the distillation unit. Working with a United Nations official, he plans to run a pilot program on a small island there where water arrives by boat.

To work, the area needs direct sunlight, a good governance system around the water that would run the desalination units after initial set up, and a need for potable water. The team also plans to market to communities in West Africa, Lima, Peru, and along the coast in Chile.

Source: University of Michigan