The ability to sense nanotelsa magnetic fields with nanoscale spatial resolution is an outstanding technical challenge relevant to the physical and biological sciences. For example, detection of such weak localized fields will enable sensing of magnetic resonance signals from individual electron or nuclear spins in complex biological molecules and the readout of classical or quantum bits of information encoded in an electron or nuclear spin memory. Here we present a novel approach to nanoscale magnetic sensing based on coherent control of an individual electronic spin contained in the Nitrogen-Vacancy (NV) center in diamond. At room temperature, using an ultra-pure diamond sample, we achieve shot-noise-limited detection of 3 nanotesla magn...
Controllable atomic-scale quantum systems hold great potential as sensitive tools for nanoscale imag...
We propose a protocol to estimate magnetic fields using a single nitrogen-vacancy (N-V) center in di...
Nuclear spin imaging at the atomic level is essential for the understanding of fundamental biologica...
Nitrogen-vacancy (NV) centers in diamond have recently emerged as a promising new system for quantum...
The nitrogen-vacancy (NV) center in diamond is a solid-state point defect with an electronic spin th...
The isolated electronic spin system of the nitrogen-vacancy (NV) centre in diamond offers unique pos...
We report an experimental study of the longitudinal relaxation time ($T_1$) of the electron spin ass...
This paper reviews applications of diamonds for sensing of magnetic and electrical fields, pressure ...
Point defects in diamond known as nitrogen-vacancy centres have been shown to be sensitive to minute...
We developed a novel magnetometer that employs negatively charged nitrogen-vacancy (NV–) centers in ...
Wide-field quantum magnetometry using nitrogen-vacancy (NV) center in diamond can be a breakthrough ...
Optically detected magnetic resonance using nitrogen–vacancy (NV) colour centres in diamond is a lea...
© 2015 Dr. Kristijan Dragan JovanoskiResolving the biological neural network dynamics of the brain w...
Nitrogen vacancy (NV) color centers in diamond are a leading modality for both superresolution optic...
Magnetic resonance imaging can characterize and discriminate among tissues using their diverse physi...
Controllable atomic-scale quantum systems hold great potential as sensitive tools for nanoscale imag...
We propose a protocol to estimate magnetic fields using a single nitrogen-vacancy (N-V) center in di...
Nuclear spin imaging at the atomic level is essential for the understanding of fundamental biologica...
Nitrogen-vacancy (NV) centers in diamond have recently emerged as a promising new system for quantum...
The nitrogen-vacancy (NV) center in diamond is a solid-state point defect with an electronic spin th...
The isolated electronic spin system of the nitrogen-vacancy (NV) centre in diamond offers unique pos...
We report an experimental study of the longitudinal relaxation time ($T_1$) of the electron spin ass...
This paper reviews applications of diamonds for sensing of magnetic and electrical fields, pressure ...
Point defects in diamond known as nitrogen-vacancy centres have been shown to be sensitive to minute...
We developed a novel magnetometer that employs negatively charged nitrogen-vacancy (NV–) centers in ...
Wide-field quantum magnetometry using nitrogen-vacancy (NV) center in diamond can be a breakthrough ...
Optically detected magnetic resonance using nitrogen–vacancy (NV) colour centres in diamond is a lea...
© 2015 Dr. Kristijan Dragan JovanoskiResolving the biological neural network dynamics of the brain w...
Nitrogen vacancy (NV) color centers in diamond are a leading modality for both superresolution optic...
Magnetic resonance imaging can characterize and discriminate among tissues using their diverse physi...
Controllable atomic-scale quantum systems hold great potential as sensitive tools for nanoscale imag...
We propose a protocol to estimate magnetic fields using a single nitrogen-vacancy (N-V) center in di...
Nuclear spin imaging at the atomic level is essential for the understanding of fundamental biologica...