Diamond quantum thermometry: From foundations to applications
arXiv:2103.17137 · doi:10.1088/1361-6528/ac1fb1
Abstract
Diamond quantum thermometry exploits the optical and electrical spin properties of colour defect centres in diamonds and, acts as a quantum sensing method exhibiting ultrahigh precision and robustness. Compared to the existing luminescent nanothermometry techniques, a diamond quantum thermometer can be operated over a wide temperature range and a sensor spatial scale ranging from nanometres to micrometres. Further, diamond quantum thermometry is employed in several application, including electronics and biology, to explore these fields with nanoscale temperature measurements. This review covers the operational principles of diamond quantum thermometry for spin-based and all-optical methods, material development of diamonds with a focus on thermometry, and examples of applications in electrical and biological systems with demand-based technological requirements.
27 pages, 13 figures, Comments are welcome
References in corpus (12)
- Silicon-Vacancy Spin Qubit in Diamond: A Quantum Memory Exceeding 10 ms with Single-Shot State Readout
- Broadband Magnetometry and Temperature Sensing with a Light Trapping Diamond Waveguide
- All-optical thermometry and the thermal properties of the optically detected spin resonances of the NV center in nano-diamond
- Thermal imaging of spin Peltier effect
- Electron spin resonance of nitrogen-vacancy centers in optically trapped nanodiamonds
- Realtime magnetic field sensing and imaging using a single spin in diamond
- An electrochemical thermal transistor
- Germanium-Vacancy Color Center in Diamond as a Non-invasive Temperature Sensor
- Optical thermometry based on level anticrossing in silicon carbide
- High-Sensitivity Temperature Sensing Using an Implanted Single Nitrogen-Vacancy Center Array in Diamond
- Nitrogen-Vacancy Ensemble Magnetometry Based on Pump Absorption
- Surface effects on nitrogen vacancy centers neutralization in diamond
Cited by in corpus (20)
- Nanodiamond quantum sensors reveal temperature variation associated to hippocampal neurons firing
- Multi-spin probes for thermometry in the strong-coupling regime
- All-optical nanoscale thermometry based on silicon-vacancy centers in detonation nanodiamonds
- Long Spin Coherence and Relaxation Times in Nanodiamonds Milled from Polycrystalline C Diamond
- Glass-patternable notch-shaped microwave architecture for on-chip spin detection in biological samples
- Spatially resolved lock-in micro-thermography (SR-LIT): A tensor analysis-enhanced method for anisotropic thermal characterization
- Temperature Sensing with RF-Dressed States of Nitrogen-Vacancy Centers in Diamond
- Temperature dependent spin-phonon coupling of boron-vacancy centers in hexagonal boron nitride
- Thermometry Based on a Superconducting Qubit
- Diamond quantum sensors in microfluidics technology
- Luminescence thermometry based on photon emitters in nanophotonic silicon waveguides
- Topological quantum thermometry
- Widefield quantum microscopy with nitrogen-vacancy centers in diamond: strengths, limitations, and prospects
- Quantum thermometry in diffraction-limited systems
- Boltzman optical thermometry for cryogenics
- All-optical electric field sensing with nanodiamond-doped polymer thin films
- Fast coherent control of nitrogen-14 spins associated with nitrogen-vacancy centers in diamonds using dynamical decoupling
- Spin-mechanical thermal machines
- Four-order power reduction in nanoscale electron-nuclear double resonance with a nitrogen-vacancy center in diamond
- Engineering Nanodiamonds for Quantum Sensing: Material Constraints at the Nanoscale