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Chemists help solve mystery of missing space sulfur

Chemists help solve mystery of missing space sulfur
Clouds of cosmic dust and gas contain many of the building blocks needed for life, but sulfur is mysteriously rare. One of the most common forms of sulfur is S8, a ring of sulfur atoms that form a crown-like structure. A team of astrochemists, including an Ole Miss researcher, has discovered that 聽the crowns may help point scientists in the right direction. Graphic by John McCustion/University Marketing and Communications

For decades, astrochemists have been looking for sulfur atoms in space and finding surprisingly little of the element that is a key ingredient to life. A new study could point to where it has been hiding.

An international team of researchers including Ryan Fortenberry, an astrochemist at the University of Mississippi; Ralf Kaiser, professor of chemistry at the University of Hawaii at M膩noa; and Samer Gozem, computational chemist at Georgia State University, published their .

"Hydrogen sulfide is everywhere: it's a product of coal-fired power plants, it has an effect on , it changes the pH levels of oceans and it comes out of volcanoes," Fortenberry said. "If we gain a better understanding of what the chemistry of sulfur can do, the technological commercialization that can come from that can only be realized with a foundation of fundamental knowledge."

Sulfur is the 10th most abundant element in the universe and is considered a vital chemical element for planets, stars and life. The lack of molecular sulfur in space has been a mystery for years.

"The observed amount of sulfur in dense molecular clouds is less鈥攃ompared to predicted gas-phase abundances鈥 by three orders of magnitude," Kaiser said.

The answer might lie in interstellar ice.

Chemists Help Solve Mystery of Missing Space Sulfur
Sulfur-bearing molecules identified in the interstellar medium. Credit: Nature Communications (2025). DOI: 10.1038/s41467-025-61259-2

In cold regions of space, sulfur can form two distinct, stable configurations: octasulfur crowns, which are a group of eight sulfur atoms configured in ring-like crowns, and polysulfanes, chains of that are bonded by hydrogen. These molecules can form on icy dust grains, locking sulfur into solid forms.

"If you use, for instance, the James Webb Space Telescope, you get a specific signature at specific wavelengths for oxygen and carbon and nitrogen and so forth," Fortenberry said. "But when you do that for sulfur, it's out of whack, and we don't know why there isn't enough molecular sulfur.

"What this work is showing is that the most common forms of sulfur that we already know about are probably where the sulfur is hiding."

Kaiser and Fortenberry's research showed that these sulfur-rich molecules may be abundant in icy regions of interstellar space, giving astronomers a potential road map to solving the sulfur puzzle.

"Laboratory simulations of interstellar conditions such as this study discover possible inventories of sulfur鈥揷ontaining molecules that can be formed on interstellar ices," Kaiser said. "Astronomers can then utilize the results and look for these polysulfane molecules in the via once sublimed into the gas-phase in ."

The reason sulfur has been so difficult to find is that the bonds it forms are always changing, going from crowns to chains and a variety of other formulations.

"It never maintains the same shape," Fortenberry said. "It's kind of like a virus鈥攁s it moves, it changes."

The researchers' work identifies possible stable configurations that astronomers can search for in the universe.

"The thing that I love about astrochemistry is that it forces you to ask hard questions, then forces you to come up with creative solutions," Fortenberry said. "And those hard questions and creative solutions can have significant, unintended positive consequences."

More information: Ashanie Herath et al, Missing interstellar sulfur in inventories of polysulfanes and molecular octasulfur crowns, Nature Communications (2025).

Journal information: Nature Communications , Nature

Citation: Chemists help solve mystery of missing space sulfur (2025, August 11) retrieved 11 August 2025 from /news/2025-08-chemists-mystery-space-sulfur.html
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