Ultra-sensitive magnetic sensor based on 3-dimensional rotation induced Berry phase
- URL: http://arxiv.org/abs/2506.23521v1
- Date: Mon, 30 Jun 2025 05:12:25 GMT
- Title: Ultra-sensitive magnetic sensor based on 3-dimensional rotation induced Berry phase
- Authors: Huaijin Zhang, Zhang-Qi Yin,
- Abstract summary: We propose a novel approach for direct current (DC) magnetic field measurement based on the Berry phase generated by three-dimensional rotation.<n>We analyze the adiabatic evolution of the 14N nuclear spin inside a levitated 3D rotating diamond with frequencies around MHz.<n>Using this mechanism, we theoretically demonstrate that the static magnetic field sensitivity can reach 10(-7) T/Hz(1/2)/N(1/2) for 14N nuclear spins under the current experimental conditions.
- Score: 0.18416014644193066
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: High-sensitivity magnetometers play a crucial role in various domains, including fundamental physics, biomedical imaging, and navigation. Levitated diamonds containing nitrogen-vacancy (NV) centers exhibit significant potential for magnetic sensing due to their high mechanical quality (Q) factor and long spin coherence time. However, previous studies have predominantly focused on electron spin-based measurements of alternating current (AC) magnetic fields. In this letter, we propose a novel approach for direct current (DC) magnetic field measurement based on the Berry phase generated by three-dimensional rotation. We analyze the adiabatic evolution of the 14N nuclear spin inside a levitated 3D rotating diamond with frequencies around MHz. Our finding reveals that the Berry phase exhibits high sensitivity to external parameters near rotation induced nuclear spin resonance. Using this mechanism, we theoretically demonstrate that the static magnetic field sensitivity can reach 10^(-7) T/Hz^(1/2)/N^(1/2) for 14N nuclear spins under the current experimental conditions.
Related papers
- Quantum sensing via magnetic-noise-protected states in an electronic
spin dyad [0.0]
We investigate the coherent spin dynamics of a hetero-spin system formed by a spin S=1 featuring a non-zero crystal field.
We show that the zero-quantum coherences we create between them can be remarkably long-lived.
These spin dyads could be exploited as nanoscale gradiometers for precision magnetometry or as probes for magnetic-noise-free electrometry and thermal sensing.
arXiv Detail & Related papers (2023-06-29T19:27:17Z) - Imaging magnetism evolution of magnetite to megabar pressure range with
quantum sensors in diamond anvil cell [57.91882523720623]
We develop an in-situ magnetic detection technique at megabar pressures with high sensitivity and sub-microscale spatial resolution.
We observe the macroscopic magnetic transition of Fe3O4 in the megabar pressure range from strong ferromagnetism (alpha-Fe3O4) to weak ferromagnetism (beta-Fe3O4) and finally to non-magnetism (gamma-Fe3O4)
The presented method can potentially investigate the spin-orbital coupling and magnetism-superconductivity competition in magnetic systems.
arXiv Detail & Related papers (2023-06-13T15:19:22Z) - Ultrasensitive atomic comagnetometer with enhanced nuclear spin
coherence [8.784565323288149]
A new relaxation mechanism is found in alkali-noble-gas comagnetometers.
operating in the self-compensation regime, our device achieves an ultrahigh inertial rotation sensitivity of $3times10-8$,rad/s/Hz$1/2$.
We propose to use this comagnetometer to search for exotic spin-dependent interactions involving proton and neutron spins.
arXiv Detail & Related papers (2022-10-17T12:45:21Z) - DC Quantum Magnetometry Below the Ramsey Limit [68.8204255655161]
We demonstrate quantum sensing of dc magnetic fields that exceeds the sensitivity of conventional $Tast$-limited dc magnetometry by more than an order of magnitude.
We used nitrogen-vacancy centers in a diamond rotating at periods comparable to the spin coherence time, and characterize the dependence of magnetic sensitivity on measurement time and rotation speed.
arXiv Detail & Related papers (2022-03-27T07:32:53Z) - High-Field Magnetometry with Hyperpolarized Nuclear Spins [0.0]
We propose and demonstrate a high-field spin magnetometer constructed from an ensemble of hyperpolarized $13C$ nuclear spins in diamond.
For quantum sensing at 7T and a single crystal sample, we demonstrate spectral resolution better than 100 mHz.
This work points to interesting opportunities for microscale NMR chemical sensors constructed from hyperpolarized nanodiamonds.
arXiv Detail & Related papers (2021-12-22T01:33:07Z) - Zero-field magnetometry using hyperfine-biased nitrogen-vacancy centers
near diamond surfaces [5.189354274663932]
We show that a 130 MHz coupling from a first-shell 13C nuclear spin can provide an effective bias field to an NV center spin.
With the charge noises suppressed by the strong hyperfine field, the ac magnetometry under zero field also reaches the limit set by decoherence.
The hyperfine-bias enhanced zero-field magnetometry can be combined with dynamical decoupling to enhance single-molecule magnetic resonance spectroscopy.
arXiv Detail & Related papers (2021-09-12T06:37:52Z) - Quantum control of nuclear spin qubits in a rapidly rotating diamond [62.997667081978825]
Nuclear spins in certain solids couple weakly to their environment, making them attractive candidates for quantum information processing and inertial sensing.
We demonstrate optical nuclear spin polarization and rapid quantum control of nuclear spins in a diamond physically rotating at $1,$kHz, faster than the nuclear spin coherence time.
Our work liberates a previously inaccessible degree of freedom of the NV nuclear spin, unlocking new approaches to quantum control and rotation sensing.
arXiv Detail & Related papers (2021-07-27T03:39:36Z) - Anisotropic electron-nuclear interactions in a rotating quantum spin
bath [55.41644538483948]
Spin-bath interactions are strongly anisotropic, and rapid physical rotation has long been used in solid-state nuclear magnetic resonance.
We show that the interaction between electron spins of nitrogen-vacancy centers and a bath of $13$C nuclear spins introduces decoherence into the system.
Our findings offer new insights into the use of physical rotation for quantum control with implications for quantum systems having motional and rotational degrees of freedom that are not fixed.
arXiv Detail & Related papers (2021-05-16T06:15:00Z) - Ferromagnetic Gyroscopes for Tests of Fundamental Physics [49.853792068336034]
A ferromagnetic gyroscope (FG) is a ferromagnet whose angular momentum is dominated by electron spin polarization and that will precess under the action of an external torque.
We model and analyze FG dynamics and sensitivity, focusing on practical schemes for experimental realization.
arXiv Detail & Related papers (2020-10-17T07:13:50Z) - Nuclear Spin Assisted Magnetic Field Angle Sensing [0.0]
Quantum sensing exploits the strong sensitivity of quantum systems to measure small external signals.
The nitrogen-vacancy center in diamond is one of the most promising platforms for real-world quantum sensing applications.
arXiv Detail & Related papers (2020-10-08T18:24:16Z) - Spin current generation and control in carbon nanotubes by combining
rotation and magnetic field [78.72753218464803]
We study the quantum dynamics of ballistic electrons in rotating carbon nanotubes in the presence of a uniform magnetic field.
By suitably combining the applied magnetic field intensity and rotation speed, one can tune one of the currents to zero while keeping the other one finite, giving rise to a spin current generator.
arXiv Detail & Related papers (2020-01-20T08:54:56Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.