Porous compound pulls 2 liters of water from air, and is factory-ready

The new material could help ease drought by extracting up to 1.8 liters of water from the air per day.  Michaela St – Pexels  View 5 Images

“Regions like these are facing rising temperatures and declining rainfall,” says Norbert Stock of Kiel University’s Institute of Inorganic Chemistry, lead author of the study published across two papers: in the Journal of Materials Chemistry A and Industrial & Engineering Chemistry Research. “Our goal is to develop an environmentally friendly technology that converts water molecules from the air into drinking water.”

The material, called CAU-10-H, belongs to a class of compounds known as Metal-Organic Frameworks (MOF). These structures are riddled with microscopic pores that behave like molecular sponges, soaking up water vapor and releasing it again with minimal fuss. The foundational chemistry behind MOFs earned Omar Yaghi the 2025 Nobel Prize in Chemistry. Yaghi has already spun the idea out into his company Atoco, which is developing shipping‑container‑sized units designed to pull up to 1,000 liters (264 gallons) of water a day from desert air, with first commercial systems planned for the second half of 2026.

Lasse Wegner (left) and Kalle Mertin (right) present a prototype water-harvesting cell and a model of the MOF developed for atmospheric water harvesting and cooling
Lasse Wegner (left) and Kalle Mertin (right) present a prototype water-harvesting cell and a model of the MOF developed for atmospheric water harvesting and cooling.  Kiel University

CAU-10-H, developed at Kiel University (CAU) in Germany, takes a different but complementary approach – and its creators think it’s ready to leave the lab. The name itself comes from the acronym “CAU” (Christian-Albrechts-Universität zu Kiel), the university’s German name and the material’s birthplace. “10” marks its place in the university’s numbered catalog of compounds, and “H” flags the hydrogen-based chemical group used to build it.

Most moisture-harvesting materials need relatively humid air to function well. CAU-10-H starts capturing water molecules at room temperature once relative humidity passes just 18% – conditions most systems would write off as too dry to bother with.

Releasing that water is just as undemanding. Heating the material to around 70 °C (158 °F) is sufficient to drive off the captured moisture, a temperature low enough to reach using solar heat or waste heat from a factory, rather than expensive electricity. When the Kiel team combined the material with conductive carbon structures, they sped up the cycle further, achieving continuous operation with cycles lasting just a few hours.

CAU-10-H, the porous MOF material developed by researchers in Kiel, Germany
CAU-10-H, the porous MOF material developed by researchers in Kiel, Germany.  Kiel University

Under dry air conditions, the material captures up to 0.17 grams of water per gram of material, translating to a projected 1.8 liters (0.5 gal) of water per day for every kilogram (2.2 lb) of the composite. “This makes the material particularly attractive for producing drinking water, even in arid regions,” says Lasse Wegner, another of the study authors.

CAU-10-H has a second use as a refrigerant. In adsorption cooling systems, it triples the performance of silica gel, the standard desiccant used for decades. The appeal is using waste heat – the kind that leaks out of a data center or a bakery oven – to cool spaces without adding to the electrical load of conventional air conditioning.

These results place CAU-10-H among the more efficient low-humidity, low-heat sorbents reported to date, though direct comparisons are difficult: the Kiel numbers describe grams of raw material in lab conditions, while Atoco’s container-scale figures describe liters produced by a complete machine with fans and heat exchangers included. There is also no standardized benchmark for comparing CAU-10-H to a UNC Chapel Hill material announced in July 2026, which releases captured water in about three minutes at 50 °C (122 °F) – a design optimized for speed of release rather than maximum water uptake per cycle.

Diagram showing how CAU-10-H captures and releases water molecules
Diagram showing how CAU-10-H captures and releases water molecules.  Kiel University

But what matters most here isn’t the chemistry itself; it’s scaling the material up for real use. “We discovered CAU-10-H around 15 years ago, and since then its potential applications have been investigated around the world,” says Stock, who has been conducting research on MOFs for more than two decades.

With backing from Kiel University’s validation fund, the team has now produced about 30 kg (66 lb) of the material – roughly 60 times more than any previous lab batch – at an estimated cost of US$12 to $14 per kilogram. “This brings practical applications of our materials within reach,” says Stock. “We have shown that they not only work in the laboratory but can also be produced on an economically viable scale.”

That jump from grams to kilograms is exactly what trips up most promising lab materials before they ever reach the real world. CAU-10-H, by contrast, now has a factory price tag and a scaling plan. The next test will be real-world deployments. If those confirm the lab numbers, CAU-10-H could become a key piece of the MOF revolution, pulling …[for the balance of this very important article please visit: https://newatlas.com/materials/cau-10-h-water-from-air-kiel-university/]

Source: Kiel University  View gallery – 5 images

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