DC Magnetometry at the Limit
arXiv:1611.04691 · doi:10.1103/PhysRevLett.122.100501
Abstract
Sensing static or slowly varying magnetic fields with high sensitivity and spatial resolution is critical to many applications in fundamental physics, bioimaging and materials science. Several versatile magnetometry platforms have emerged over the past decade, such as electronic spins associated with Nitrogen Vacancy (NV) centers in diamond. However, their high sensitivity to external fields also makes them poor sensors of DC fields. Indeed, the usual method of Ramsey magnetometry leaves them prone to environmental noise, limiting the allowable interrogation time to the short dephasing time T2*. Here we introduce a hybridized magnetometery platform, consisting of a sensor and ancilla, that allows sensing static magnetic fields with interrogation times up to the much longer T2 coherence time, allowing significant potential gains in field sensitivity. While more generally applicable, we demonstrate the method for an electronic NV sensor and a nuclear ancilla. It relies on frequency upconversion of transverse DC fields through the ancilla, allowing quantum lock-in detection with low-frequency noise rejection. In our experiments, we demonstrate sensitivities better than 6uT/vHz, comparable to the Ramsey method, and narrow-band signal noise filtering better than 64kHz. With technical optimization, we expect more than an one order of magnitude improvement in each of these parameters. Since our method measures transverse fields, in combination with the Ramsey detection of longitudinal fields, it ushers in a compelling technique for sensitive vector DC magnetometry at the nanoscale.
12+3 pages
References in corpus (29)
- Quantum sensing
- High-sensitivity diamond magnetometer with nanoscale resolution
- Probing condensed matter physics with magnetometry based on nitrogen-vacancy centres in diamond
- Fault-Tolerant Quantum Dynamical Decoupling
- How to Enhance Dephasing Time in Superconducting Qubits
- Coherent optical wavelength conversion via cavity-optomechanics
- Dynamic polarization of single nuclear spins by optical pumping of NV color centers in diamond at room temperature
- Dynamic strain-mediated coupling of a single diamond spin to a mechanical resonator
- Resolved sidebands in a strain-coupled hybrid spin-oscillator system
- Detection and control of individual nuclear spins using a weakly coupled electron spin
- Magnetic field imaging with NV ensembles
- Real-space imaging of non-collinear antiferromagnetic order with a single spin magnetometer
- High sensitivity magnetic imaging using an array of spins in diamond
- Robust dynamical decoupling for quantum computing and quantum memory
- Simultaneous Broadband Vector Magnetometry Using Solid-State Spins
- A low-noise ferrite magnetic shield
- Efficient readout of a single spin state in diamond via spin-to-charge conversion
- Single Ion Quantum Lock-In Amplifier
- Nanomechanical sensing using spins in diamond
- Spin-strain interaction in nitrogen-vacancy centers in diamond
- Microwave-free magnetometry with nitrogen-vacancy centers in diamond
- Robust High-Dynamic-Range Vector Magnetometry via Nitrogen-Vacancy Centers in Diamond
- Optimal pulse spacing for dynamical decoupling in the presence of a purely-dephasing spin-bath
- Performance comparison of dynamical decoupling sequences for a qubit in a rapidly fluctuating spin-bath
- Radio-frequency magnetometry using a single electron spin
- Vector magnetometry using silicon vacancies in 4H-SiC at ambient conditions
- Room-temperature high-speed nuclear-spin quantum memory in diamond
- Quantum Interpolation for High Resolution Sensing
- Mixed-state quantum transport in correlated spin networks
Cited by in corpus (26)
- Sensitivity Optimization for NV-Diamond Magnetometry
- Semiconductor Qubits In Practice
- Tight bounds on the simultaneous estimation of incompatible parameters
- Microwave-free vector magnetometry with nitrogen-vacancy centers along a single axis in diamond
- Quantum Jarzynski Equality in Open Quantum Systems from the One-Time Measurement Scheme
- Nanoscale vector AC magnetometry with a single nitrogen-vacancy center in diamond
- Optimal estimation with quantum optomechanical systems in the nonlinear regime
- Characterizing non-Markovian Off-Resonant Errors in Quantum Gates
- Precise Spectroscopy of High-Frequency Oscillating Fields with a Single-Qubit Sensor
- Quantum control of nuclear spin qubits in a rapidly rotating diamond
- Transition metal impurities in Silicon: Computational search for a semiconductor qubit
- Single NV Centers as Sensors for Radio-Frequency Fields
- DC Quantum Magnetometry Below the Ramsey Limit
- Diamond Nitrogen-Vacancy Center Magnetometry: Advances and Challenges
- High-Fidelity Electron Spin Gates for Scaling Diamond Quantum Register
- Vector DC magnetic-field sensing with reference microwave field using perfectly aligned nitrogen-vacancy centers in diamond
- Self-consistent noise characterization of quantum devices
- Digital noise spectroscopy with a quantum sensor
- Dephasing-tolerant quantum sensing for transverse magnetic fields with spin qudits
- Tunable Gyromagnetic Augmentation of Nuclear Spins in Diamond
- Anisotropic electron-nuclear interactions in a rotating quantum spin bath
- Quadrupolar resonance spectroscopy of individual nuclei using a room-temperature quantum sensor
- Planar scanning probe microscopy enables vector magnetic field imaging at the nanoscale
- Channel-based framework for phase esimation of multiple eigenvalues
- Fast coherent control of nitrogen-14 spins associated with nitrogen-vacancy centers in diamonds using dynamical decoupling
- Quantum Memory Enhanced Multipoint Correlation Spectroscopy for Statistically Polarized NMR