Hyperpolarized Nuclear @ Fu Group
At HyperFuN, we develop and apply advanced solid-state NMR and dynamic nuclear polarization (DNP) methodologies to uncover structure-function relationships in optoelectronic materials under realistic conditions. Our research is method-driven, with a strong focus on NMR sensitivity enhancement, operando spectroscopy, and structural analysis.
We develop advanced solid-state NMR methodologies and push the frontiers of DNP, with a particular emphasis on room-temperature DNP. Our work includes:
These efforts enable NMR to access previously inaccessible systems and significantly improve experimental efficiency.
We apply NMR to a wide range of optoelectronic materials, including:
A central theme is operando and in situ spectroscopy, where we probe structural evolution under:
We focus on understanding structure-property relationships across multiple length scales, including:
By combining low- and room-temperature DNP, we significantly enhance NMR sensitivity and extend its applicability to challenging systems. Our goals include:
This enables deeper structural insights beyond the limits of conventional NMR.
Computational approaches are essential for interpreting NMR data and extracting quantitative insights.
We combine experiment and theory to:
This integration enables a deeper understanding of structure-electronics relationships.