Quantum Sensing of Spin Fluctuations of Magnetic Insulator Films with
Perpendicular Anisotropy
- URL: http://arxiv.org/abs/2009.02883v1
- Date: Mon, 7 Sep 2020 04:24:44 GMT
- Title: Quantum Sensing of Spin Fluctuations of Magnetic Insulator Films with
Perpendicular Anisotropy
- Authors: Eric Lee-Wong, Jinjun Ding, Xiaoche Wang, Chuanpu Liu, Nathan J.
McLaughlin, Hailong Wang, Mingzhong Wu, Chunhui Rita Du
- Abstract summary: Nitrogen vacancy (NV) centers are applied to emerging quantum sensing, imaging, and network efforts.
We report noninvasive measurement of intrinsic spin fluctuations of magnetic insulator thin films with a spontaneous out-of-plane magnetization.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Nitrogen vacancy (NV) centers, optically active atomic defects in diamond,
have been widely applied to emerging quantum sensing, imaging, and network
efforts, showing unprecedented field sensitivity and nanoscale spatial
resolution. Many of these advantages derive from their excellent
quantum-coherence, controllable entanglement, and high fidelity of operations,
enabling opportunities to outperform the classical counterpart. Exploiting this
cutting-edge quantum metrology, we report noninvasive measurement of intrinsic
spin fluctuations of magnetic insulator thin films with a spontaneous
out-of-plane magnetization. The measured field dependence of NV relaxation
rates is well correlated to the variation of magnon density and band structure
of the magnetic samples, which are challenging to access by the conventional
magnetometry methods. Our results highlight the significant opportunities
offered by NV centers in diagnosing the noise environment of functional
magnetic elements, providing valuable information to design next-generation,
high-density, and scalable spintronic devices.
Related papers
- New opportunities in condensed matter physics for nanoscale quantum sensors [0.14993626998062629]
Nitrogen vacancy (NV) centre quantum sensors provide unique opportunities in studying condensed matter systems.
They are quantitative, noninvasive, physically robust, offer nanoscale resolution, and may be used across a wide range of temperatures.
These properties have been exploited in recent years to obtain nanoscale resolution measurements of static magnetic fields.
arXiv Detail & Related papers (2024-03-20T16:13:22Z) - Quantum Locking of Intrinsic Spin Squeezed State in Earth-field-range Magnetometry [8.565359790342576]
We identify the intrinsic spin squeezed state (SSS) generated from the geomagnetically induced NLZ effect.
We develop a quantum locking technique to achieve a persistent SSS, benefiting from which the sensitivity of the Earth-field-range magnetometer is quantum-enhanced.
arXiv Detail & Related papers (2023-09-21T07:57:07Z) - 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) - All-Optical Nuclear Quantum Sensing using Nitrogen-Vacancy Centers in
Diamond [52.77024349608834]
Microwave or radio-frequency driving poses a significant limitation for miniaturization, energy-efficiency and non-invasiveness of quantum sensors.
We overcome this limitation by demonstrating a purely optical approach to coherent quantum sensing.
Our results pave the way for highly compact quantum sensors to be employed for magnetometry or gyroscopy applications.
arXiv Detail & Related papers (2022-12-14T08:34:11Z) - Sensing of magnetic field effects in radical-pair reactions using a
quantum sensor [50.591267188664666]
Magnetic field effects (MFE) in certain chemical reactions have been well established in the last five decades.
We employ elaborate and realistic models of radical-pairs, considering its coupling to the local spin environment and the sensor.
For two model systems, we derive signals of MFE detectable even in the weak coupling regime between radical-pair and NV quantum sensor.
arXiv Detail & Related papers (2022-09-28T12:56:15Z) - Nanodiamonds based optical-fiber quantum probe for magnetic field and
biological sensing [6.643766442180283]
In this work, a miniature optical-fiber quantum probe, configured by chemically-modifying nanodiamonds NV centers, is developed.
The magnetic field detection sensitivity of the probe is significantly enhanced to 0.57 nT/Hz1/2 @ 1Hz, a new record among the fiber magnetometers based on nanodiamonds NV.
arXiv Detail & Related papers (2022-02-24T01:41:13Z) - Near-Field Terahertz Nanoscopy of Coplanar Microwave Resonators [61.035185179008224]
Superconducting quantum circuits are one of the leading quantum computing platforms.
To advance superconducting quantum computing to a point of practical importance, it is critical to identify and address material imperfections that lead to decoherence.
Here, we use terahertz Scanning Near-field Optical Microscopy to probe the local dielectric properties and carrier concentrations of wet-etched aluminum resonators on silicon.
arXiv Detail & Related papers (2021-06-24T11:06:34Z) - Demonstration of electron-nuclear decoupling at a spin clock transition [54.088309058031705]
Clock transitions protect molecular spin qubits from magnetic noise.
linear coupling to nuclear degrees of freedom causes a modulation and decay of electronic coherence.
An absence of quantum information leakage to the nuclear bath provides opportunities to characterize other decoherence sources.
arXiv Detail & Related papers (2021-06-09T16:23:47Z) - AC susceptometry of 2D van der Waals magnets enabled by the coherent
control of quantum sensors [4.103177660092151]
We coherently control the NV center's spin precession to achieve ultra-sensitive ac susceptometry of a 2D ferromagnet.
We show that domain wall mobility is enhanced in ultrathin CrBr3, with minimal decrease for frequencies exceeding hundreds of kilohertz.
Our technique extends NV magnetometry to the multi-functional ac and dc magnetic characterization of wide-ranging spintronic materials at the nanoscale.
arXiv Detail & Related papers (2021-05-17T17:28:46Z) - Surpassing the Energy Resolution Limit with ferromagnetic torque sensors [55.41644538483948]
We evaluate the optimal magnetic field resolution taking into account the thermomechanical noise and the mechanical detection noise at the standard quantum limit.
We find that the Energy Resolution Limit (ERL), pointed out in recent literature, can be surpassed by many orders of magnitude.
arXiv Detail & Related papers (2021-04-29T15:44:12Z) - Spin Entanglement and Magnetic Competition via Long-range Interactions
in Spinor Quantum Optical Lattices [62.997667081978825]
We study the effects of cavity mediated long range magnetic interactions and optical lattices in ultracold matter.
We find that global interactions modify the underlying magnetic character of the system while introducing competition scenarios.
These allow new alternatives toward the design of robust mechanisms for quantum information purposes.
arXiv Detail & Related papers (2020-11-16T08:03:44Z)
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.