Fusion of Macrocycle, Molecular Cages Enhances Lithium-Ion Transport
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Designing Safer LithiumSciTechDaily
•Cornell’s Breakthrough Could Mean the End of Exploding Batteries
84% Informative
Researchers at Cornell have engineered a groundbreaking porous crystal using a unique fusion of macrocycle and molecular cage structures.
This new crystal design features one-dimensional nanochannels that significantly increase ion conductivity.
This innovative design has the potential to enhance the safety of solid-state lithium-ion batteries.
The material could be potentially used to separate ions in water purification and bioelectronics.
The research was supported by Cornell Engineering’s Engineering Learning Initiatives .
The researchers made use of the Cornell Center for Materials Research and the Columbia University Materials Research Science and Engineering Center .
Co-authors include doctoral student Kaiyang Wang , M.S. ’ 19 ; master’’s student Ashutosh Garudapalli .
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