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MIT News

AI helps design new materials that work in the real world

Today, anyone with a large enough artificial intelligence model can generate millions of new material designs in minutes.

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One reason for the translation gap is that current models donโ€™t reliably factor in the chemical stability of the materials they generate, and unstable materials arenโ€™t very useful in the real world. That forces industries to allocate huge computational budgets to screening out all the unstable materials they generate, in some cases leaving behind a tiny fraction of usable options.

Now, MIT researchers have developed a framework that can be applied at the beginning of the materials generation process to vastly improve the stability rate while achieving targeted material properties. It works by ensuring every design satisfies certain key rules of chemistry relating to the electrons around the materialsโ€™ atoms before the expensive generation step begins. The researchers call their approach โ€œcrystal generator with valence-constrained design, or CrysVCD.

In a paper published today in Nature Computational Science , the researchers show how CrysVCD allowed several commonly used material models to meet those valence shell rules more often, and used it to achieve high lattice-dynamics stability โ€” a stringent stability test โ€” in nearly 70 percent of computational material generations. They also showed the approach could support the creation of materials with specific desired properties, like high thermal conductivity or high dielectric constant, which is important for computer chips and data centers.

A hint of how the researchers envision people using their system is in the name.

By Zach Winn | MIT News