Published · 2d agoScience3 min read
MIT trades trial and error for a property screen in the hunt for ammonia catalysts
A paper in EES Catalysis claims to identify the physical properties that drive nitrogen reduction, aimed at the cost gap keeping electrochemical ammonia out of a 200-million-ton market.
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What happened
- Researchers at MIT have developed a way to predict which materials could be most promising as catalysts in electrochemical ammonia production.
- Rather than using trial and error to test each possible combination out of the millions of possible alloys, which can take years, the new approach could greatly speed up the search for materials that could make the low-emissions method competitive with Haber-Bosch.
- Ammonia production accounts for up to 2 percent of the world's energy consumption and about 1.5 percent of greenhouse gas emissions.
- There is another way to make ammonia, using electrochemistry instead of heat and pressure, but so far this method has not been anywhere near economically competitive at the scales needed.
- The world currently uses about 200 million metric tons of ammonia each year, according to Constantine Athanitis.
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Why it matters
MIT researchers have published a method for predicting which materials should work as catalysts in electrochemical ammonia synthesis, in place of testing candidate alloys one at a time [1][2]. The target is a cost gap, not a chemistry curiosity: ammonia production accounts for up to 2 percent of the world's energy consumption and about 1.5 percent of greenhouse gas emissions, and the electrochemical route that would avoid most of that has so far been nowhere near economically competitive at the scales needed [3][4].
The scale explains why anyone keeps trying. The world uses roughly 200 million metric tons of ammonia a year [5], a volume second only to sulfuric acid [6], and it goes mostly into fertilizer [7]. More than 90 percent of the ammonia used for fertilizer still comes from Haber-Bosch [8], which by implication leaves under 10 percent for every other route combined [9]. That incumbent has been in use for over a century and, as doctoral student Constantine Athanitis puts it, "hyper-optimized since it first came out" [10]. It burns fossil fuels for process heat, and its hydrogen feed is also largely fossil-derived [11].
The alternative is not novel. "It's really just the electrochemical reaction between proton-electron pairs and nitrogen gas. And these technologies exist," Athanitis says [12], working on the same principles as electrolyzers [13]. The constraint is throughput: production rates and yields remain too low for industrial-scale production [14]. Athanitis is unsentimental about what that means. "Even though a technology might be better for the world or for the climate, companies and capitalism won't really allow it unless it's cost competitive," he says [15].
The catalyst is where the leverage sits, since its properties govern how efficiently the surface reaction proceeds [16], and selectivity matters as much as activity: a more selective catalyst yields more ammonia and fewer side products [17]. The search space is the problem. There are millions of possible alloys, and screening them by trial and error can take years [2]. The MIT work, published open access on Aug. 11 in the Royal Society of Chemistry journal EES Catalysis by Bilge Yildiz with doctoral students Athanitis and Filip Grajkowski [18], instead tries to name the descriptors that matter. "Our approach identifies the key physical properties that drive catalytic activity in ammonia production," Yildiz says, and the results are meant to guide the search for new compounds rather than settle it [19]. Her chosen test bed is metal nitrides, which she describes as an ideal material system for pinning down the electronic, chemical, and structural properties that determine reactivity in nitrogen reduction [20].
Two caveats are in the work itself. The team is not looking for one perfect material; different materials improve different parts of the reaction, and the useful answer is likely a combination [21]. And a screen is a hypothesis generator, not a demonstration.
What to watch is whether the descriptors predict measured activity in a working cell rather than calculated activity on paper, and whether any nitride that ranks well survives operating conditions long enough to matter. The number that decides this is not a property value but a production rate. Until a screened candidate is measured against the rates and yields Athanitis calls too low [14], the cost comparison with a century-optimized process stays where it is.
Claim ledger
Ranked by verification strength, evidence, and original report placement.
- [1]
Researchers at MIT have developed a way to predict which materials could be most promising as catalysts in electrochemical ammonia production.
ReportedView cited source - [2]
Rather than using trial and error to test each possible combination out of the millions of possible alloys, which can take years, the new approach could greatly speed up the search for materials that could make the low-emissions method competitive with Haber-Bosch.
ReportedView cited source - [3]
Ammonia production accounts for up to 2 percent of the world's energy consumption and about 1.5 percent of greenhouse gas emissions.
ReportedView cited source - [4]
There is another way to make ammonia, using electrochemistry instead of heat and pressure, but so far this method has not been anywhere near economically competitive at the scales needed.
ReportedView cited source - [5]
The world currently uses about 200 million metric tons of ammonia each year, according to Constantine Athanitis.
ReportedView cited source - [6]
Ammonia ranks second only to sulfuric acid in total volume produced each year.
ReportedView cited source
Sources & coverage · 2 publishers
The reporting this story was synthesized from, earliest first. Every link goes to the original.
- news.mit.eduDavid L. Chandler | Department of Materials Science and Engineering3d agoPaving the way for greener ammonia production
Additional citations
- Constantine Athanitis, MIT doctoral student, Department of Materials Science and Engineering
- Constantine Athanitis
- Bilge Yildiz, MIT


