arXiv · 2606.23952
Biophysical EPR Using Superconducting Resonators
Abstract
We present innovations that enable the use of superconducting resonators for high sensitivity, high bandwidth pulsed electron paramagnetic resonance (EPR) measurements on biologically relevant samples with enhanced stability and throughput. A custom-built X-band pulsed EPR spectrometer with AWG and digital IF capability generated by an FPGA was used to control a novel patterned thin film planar superconducting microstrip resonator capable of generating Rabi fields sufficient to achieve 6 ns pi/2 Gaussian pulses using a 100 W solid-state HPA. The system allows automated sequential calibration, measurement, and analysis of five 3.5 uL samples contained in a sample cartridge. Performance was validated through measurements of double electron-electron resonance (DEER) distances in a variety of spin-labeled protein samples with biologically relevant concentrations, including measurements below 10 uM. The results enable broadening the scope of applications for both superconducting resonators and the use of EPR in biotechnology.
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Austin R. Gamble Jarvi, Hamid R. Mohebbi, Ishit Raval, Omari Culzac, Jack Erickson, Sameh Hegazy, Don Carkner, Andrew Wiles, David G. Cory, Troy W. Borneman. 2026-06-22. Biophysical EPR Using Superconducting Resonators. https://arxiv.org/abs/2606.23952
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