Enhanced Sensing by Geometric Tuning of YIG Spheres: Noise Reduction, Signal Amplification and Directional Magnetic Field Detection
arXiv:2408.01905 · doi:10.1103/mqdg-wvkk
Abstract
Noise suppression and directional signal enhancement are essential challenges in detecting weak magnetic fields in cavity electrodynamics systems. Traditional schemes struggle to reduce magnonic probe noise but lack directional sensing capabilities. We exploit an innovative and intrinsic squeezing mechanism by leveraging the geometric configuration of an anisotropic ellipsoidal yttrium iron garnet (YIG) sphere and its interaction with internal demagnetization fields. This mechanism can enhance magnetic field signals and suppress noise in the target direction while suppressing sensitivity in non-target directions to avoid disturbing the target direction, thus generating a directionally selective sensing scheme realizing high-precision detection in complex environments. In particular, the target-direction sensor performance can be optimized by adjusting the YIG sphere's geometry (e.g., aspect ratio) without complex setups, ensuring high feasibility and scalability. Our approach offers greater flexibility and directionality by tuning the YIG sphere's geometry than existing methods. This innovation provides a new approach for weak magnetic field detection in cavity magnonics systems, with potential applications in biomedical imaging, quantum sensing, precision measurement, and environmental monitoring.
References in corpus (26)
- Strongly coupled magnons and cavity microwave photons
- Hybridizing ferromagnetic magnons and microwave photons in the quantum limit
- High Cooperativity Cavity QED with Magnons at Microwave Frequencies
- Triple-resonant Brillouin light scattering in magneto-optical cavities
- Unconventional Singularity in Anti-Parity-Time Symmetric Cavity Magnonics
- Dissipation-based Quantum Sensing of Magnons with a Superconducting Qubit
- Remote generation of magnon Schrödinger cat state via magnon-photon entanglement
- Axion search with a quantum-limited ferromagnetic haloscope
- High-sensitivity monitoring of micromechanical vibration using optical whispering gallery mode resonators
- Evading quantum mechanics
- Ultrasensitive optical magnetometry at the microscale
- Laser noise in cavity-optomechanical cooling and thermometry
- Exceptional magnetic sensitivity of PT-symmetric cavity magnon polaritons
- Entanglement-Enhanced Quantum Metrology in Colored Noise by Quantum Zeno Effect
- Spin cat states in a ferromagnetic insulator
- Coherent Cancellation of Backaction Noise in optomechanical Force Measurements
- Magnon-photon strong coupling for tunable microwave circulators
- Optical sensing of magnons via the magnetoelastic displacement
- Single-quadrature quantum magnetometry in cavity electromagnonics
- Stable Atomic Magnetometer in Parity-Time Symmetry Broken Phase
- Homodyne coherent quantum noise cancellation in a hybrid optomechanical force sensor
- Squeezing-enhanced quantum sensing with quadratic optomechanics
- Chiral coupling between a ferromagnetic magnon and a superconducting qubit
- Determining the temperature-dependent London penetration depth in HTS thin films and its effect on SQUID performance
- Ferrimagnetic Oscillator Magnetometer
- Enhancing Weak magnetic field sensing of cavity-magnon system with dual frequency modulation