Widefield NV Magnetic Field Reconstruction for Probing the Meissner Effect and Critical Current Density under Pressure
arXiv:2601.10838 · doi:10.1063/5.0323142
Abstract
The spatial distribution of a magnetic field can be determined with micrometer resolution using widefield nitrogen vacancy (NV) center magnetic imaging. Nevertheless, reconstructing the magnetic field from the raw data can be challenging due to the degeneracy of the four possible NV axes and the tremendous amount of data. While a qualitative approach is sufficient for most analyses, a quantitative analysis offers deeper insight into the physical system. Here, we apply NV widefield magnetic imaging to a HgBaCaCuO (Hg-1223) superconducting microcrystal at a pressure of 4 GPa. We fit the results with solutions from the Hamiltonian describing the NV center ground state and take into account the relative intensities of the resonances to determine the local magnetic field magnitude and angle. Thus, we reconstruct the temperature-dependent expulsion of the magnetic field due to the Meissner effect around the superconductor. By comparing the resulting parameters to Brandt's model, which describes the magnetic behavior of a type-II superconductor, we extract the critical current density . Overall, this work showcases the first widefield quantitative reconstruction of the Meissner effect under pressure and an optical method to study critical current density. Thus, it provides new insights into the application of NV magnetometry to superconductivity research at high pressures.
References in corpus (11)
- Magnetic imaging with an ensemble of Nitrogen Vacancy centers in diamond
- Observation of Superconductivity Induced Ferromagnetism in an Fe-Chalcogenide Superconductor
- Optically detected magnetic resonance of nitrogen vacancies in a diamond anvil cell using designer diamond anvils
- Probing local pressure environment in anvil cells with nitrogen vacancy (NV-) centers in diamond
- Scanning nitrogen-vacancy magnetometry down to 350mK
- All-Optical and Microwave-Free Detection of Meissner Screening using Nitrogen-Vacancy Centers in Diamond
- Spectroscopy Study on NV Sensors in Diamond-based High-pressure Devices
- Imaging the Meissner effect in pressurized bilayer nickelate with integrated multi-parameter quantum sensor
- Imaging the Meissner Effect and Flux Trapping of Superconductors under High Pressure using N-V Centers
- Probing Vortex Dynamics in 2D Superconductors with Scanning Quantum Microscope
- Studying Critical Parameters of Superconductor via Diamond Quantum Sensors