On-chip Integration of High-Frequency Electron Paramagnetic Resonance Spectroscopy and Hall-Effect Magnetometry
H. M. Quddusi, C. M. Ramsey, J. C. Gonzalez-Pons, J. J. Henderson and, E. del Barco, G. de Loubens, A. D. Kent

TL;DR
This paper presents an integrated on-chip sensor combining high-frequency electron paramagnetic resonance spectroscopy and micro-Hall magnetometry, enabling detailed studies of magnetic properties and dynamics of micron-scale samples.
Contribution
It introduces a novel integrated semiconductor chip sensor that combines high-frequency EPR spectroscopy with micro-Hall magnetometry on a single platform.
Findings
Achieved sensitivities comparable to high-quality resonant cavities.
Demonstrated measurement of magnetization response under microwave irradiation.
Enabled real-time magnetization dynamics measurements.
Abstract
A sensor that integrates high sensitivity micro-Hall effect magnetometry and high-frequency electron paramagnetic resonance spectroscopy capabilities on a single semiconductor chip is presented. The Hall-effect magnetometer was fabricated from a two dimensional electron gas GaAs/AlGaAs heterostructure in the form of a cross, with a 50x50 um2 sensing area. A high-frequency microstrip resonator is coupled with two small gaps to a transmission line with a 50 Ohms impedance. Different resonator lengths are used to obtain quasi-TEM fundamental resonant modes in the frequency range 10-30 GHz. The resonator is positioned on top of the active area of the Hall-effect magnetometer, where the magnetic field of the fundamental mode is largest, thus optimizing the conversion of microwave power into magnetic field at the sample position. The two gaps coupling the resonator and transmission lines are…
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