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'Mix-and-match' material's properties can be tuned by changing its metallic 'recipe'

'Mix-and-match' material's properties can be tuned by changing its metallic 'recipe'

phys.org 09.10.2026 20:00 3 views
Scientists have created a new family of materials whose behavior can be tuned by changing their metallic "recipe"—opening new possibilities for uses including gas storage and sensing.

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Scientists have created a new family of materials whose behavior can be tuned by changing their metallic "recipe"—opening new possibilities for uses including gas storage and sensing. Led by the University of Birmingham, chemists have created a highly adaptable metal-organic framework (MOF), in which metal atoms are connected by organic molecules to create highly ordered structures containing tiny pores.

Publishing their discovery in Angewandte Chemie, the team has shown that changing the proportions of metals within the material can alter properties including magnetism, porosity, light absorption and CO₂ uptake. Researchers from the universities of Birmingham, Nottingham and Limerick created materials capable of incorporating up to 16 different metals into the same crystal structure, the highest number yet achieved in a MOF. Corresponding author Neil Champness, a professor at the University of Birmingham, said, "Our findings confirm a route toward 'programmable' porous materials, where scientists could choose a combination of metals to dial magnetic, optical, chemical or gas-adsorption behavior.

"The ability to predict how strongly particular metals will be incorporated potentially offers much finer control over future multimetal materials. Rather than having to invent a completely new material every time they want different properties, researchers can potentially change the metallic 'recipe' within the same underlying structure." The composition and porosity of MOFs mean that these materials are being investigated for uses ranging from gas storage and separation to sensing, catalysis, bioimaging and magnetic materials. Porosity is the key structural feature that creates the internal space necessary for MOFs to interact with target molecules.

Researchers first created and structurally characterized 15 individual versions of UoB-116, each incorporating a different rare-earth metal. They then progressively combined two, four, 12 and 15 metals within the same underlying structure. Finally, they added indium to produce a MOF containing 16 different metals simultaneously, including yttrium, indium and 14 lanthanides.

UoB-116 is the first reported MOF combining metals from three different regions of the periodic table (d-, p- and f-blocks) within the same framework. By changing the proportions of two of the 16 metals—dysprosium and lanthanum—the team showed that altering that balance changes several properties: MOFs already serve as custom molecular sponges across major industries, including: Adnan Ishaq et al, Rare‐Earth Multivariate Metal–Organic Frameworks: Cationic Radius Biased Compositional Control and Property Tuning, Angewandte Chemie International Edition (2026). DOI: 10.1002/anie.5287849 Journal information: Angewandte Chemie , Angewandte Chemie International Edition BSc Life Sciences & Ecology.

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