LAYERED RF COIL FOR MAGNETOMETER
20170343618 · 2017-11-30
Assignee
Inventors
Cpc classification
G01R33/032
PHYSICS
International classification
Abstract
A system for magnetic detection includes a magneto-optical defect center material comprising a plurality of magneto-optical defect centers, an optical light source, an optical detector and a radio frequency (RF) excitation source. The optical light source is configured to provide optical excitation to the magneto-optical defect center material. The optical detector is configured to receive an optical signal emitted by the magneto-optical defect center material, The RF excitation source is configured to provide RF excitation to the magneto-optical defect center material. The RF excitation source includes an RF feed connector, and a plurality of coils, each connected to the RF feed connector, and adjacent the magneto-optical defect center material, the coils each having a spiral shape.
Claims
1. A system for magnetic detection, comprising: a magneto-optical defect center material comprising a plurality of magneto-optical defect centers; an optical light source configured to provide optical excitation to the magneto-optical defect center material; an optical detector configured to receive an optical signal emitted by the magneto-optical defect center material; and a radio frequency (RF) excitation source configured to provide RF excitation to the magneto-optical defect center material, the RF excitation source comprising: an RF feed connector; and a plurality of coils, each connected to the RF feed connector, and adjacent the magneto-optical defect center material, the coils each having a spiral shape.
2. The system for magnetic detection of claim 1, wherein the coils are arranged in layers one above another.
3. A system for magnetic detection, comprising: a magneto-optical defect center material comprising a plurality of magneto-optical defect centers; an optical light source configured to provide optical excitation to the magneto-optical defect center material; an optical detector configured to receive an optical signal emitted by the magneto-optical defect center material; and a radio frequency (RF) excitation source configured to provide RF excitation to the magneto-optical defect center material, the RF excitation source comprising: an RF feed connector; and a plurality of coils, each connected to the RF feed connector, and adjacent the magneto-optical defect center material, the coils arranged in layers one above another and to have a uniform spacing between each other.
4. The system for magnetic detection of claim 3, wherein the coils each have a spiral shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
The NV Center, its Electronic Structure, and Optical and RF Interaction
[0020] The NV center in a diamond comprises a substitutional nitrogen atom in a lattice site adjacent a carbon vacancy as shown in
[0021] The NV center may exist in a neutral charge state or a negative charge state. The neutral charge state uses the nomenclature NV.sup.0, while the negative charge state uses the nomenclature NV, which is adopted in this description.
[0022] The NV center has a number of electrons, including three unpaired electrons, each one from the vacancy to a respective of the three carbon atoms adjacent to the vacancy, and a pair of electrons between the nitrogen and the vacancy. The NV center, which is in the negatively charged state, also includes an extra electron.
[0023] The NV center has rotational symmetry, and as shown in
[0024] Introducing an external magnetic field with a component along the NV axis lifts the degeneracy of the m.sub.s=±1 energy levels, splitting the energy levels m.sub.s=±1 by an amount 2 gμ.sub.BBz, where g is the g-factor, μ.sub.B is the Bohr magneton, and Bz is the component of the external magnetic field along the NV axis. This relationship is correct to a first order and inclusion of higher order corrections is a straightforward matter and will not affect the computational and logic steps in the systems and methods described below.
[0025] The NV center electronic structure further includes an excited triplet state .sup.3E with corresponding m.sub.s=0 and m.sub.s=±1 spin states. The optical transitions between the ground state .sup.3A.sub.2 and the excited triplet .sup.3E are predominantly spin conserving, meaning that the optical transitions are between initial and final states that have the same spin. For a direct transition between the excited triplet .sup.3E and the ground state .sup.3A.sub.2, a photon of red light is emitted with a photon energy corresponding to the energy difference between the energy levels of the transitions.
[0026] There is, however, an alternative non-radiative decay route from the triplet .sup.3E to the ground state .sup.3A.sub.2 via intermediate electron states, which are thought to be intermediate singlet states A, E with intermediate energy levels. Significantly, the transition rate from the m.sub.s=±1 spin states of the excited triplet .sup.3E to the intermediate energy levels is significantly greater than the transition rate from the m.sub.s=0 spin state of the excited triplet .sup.3E to the intermediate energy levels. The transition from the singlet states A, E to the ground state triplet .sup.3A.sub.2 predominantly decays to the m.sub.s=0 spin state over the m.sub.s=±1 spins states. These features of the decay from the excited triplet .sup.3E state via the intermediate singlet states A, E to the ground state triplet .sup.3A.sub.2 allows that if optical excitation is provided to the system, the optical excitation will eventually pump the NV center into the m.sub.s=0 spin state of the ground state .sup.3A.sub.2. In this way, the population of the m.sub.s=0 spin state of the ground state .sup.3A.sub.2 may be “reset” to a maximum polarization determined by the decay rates from the triplet .sup.3E to the intermediate singlet states.
[0027] Another feature of the decay is that the fluorescence intensity due to optically stimulating the excited triplet .sup.3E state is less for the m.sub.s=±1 states than for the m.sub.s=0 spin state. This is so because the decay via the intermediate states does not result in a photon emitted in the fluorescence band, and because of the greater probability that the m.sub.s=±1 states of the excited triplet .sup.3E state will decay via the non-radiative decay path. The lower fluorescence intensity for the m.sub.s=±1 states than for the m.sub.s=0 spin state allows the fluorescence intensity to be used to determine the spin state. As the population of the m.sub.s=±1 states increases relative to the m.sub.s=0 spin, the overall fluorescence intensity will be reduced.
The NV Center, or Magneto-Optical Defect Center, Magnetic Sensor System
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[0029] The RF excitation source 330 may be a microwave coil, for example. The RF excitation source 330, when emitting RF radiation with a photon energy resonant with the transition energy between ground m.sub.s=0 spin state and the m.sub.s=+1 spin state, excites a transition between those spin states. For such a resonance, the spin state cycles between ground m.sub.s=0 spin state and the m.sub.s=+1 spin state, reducing the population in the m.sub.s=0 spin state and reducing the overall fluorescence at resonances. Similarly, resonance and a subsequent decrease in fluorescence intensity occurs between the m.sub.s=0 spin state and the m.sub.s=−1 spin state of the ground state when the photon energy of the RF radiation emitted by the RF excitation source is the difference in energies of the m.sub.s=0 spin state and the m.sub.s=−1 spin state.
[0030] The optical excitation source 310 may be a laser or a light emitting diode, for example, which emits light in the green (light having a wavelength such that the color is green), for example. The optical excitation source 310 induces fluorescence in the red, which corresponds to an electronic transition from the excited state to the ground state. Light from the NV diamond material 320 is directed through the optical filter 350 to filter out light in the excitation band (in the green, for example), and to pass light in the red fluorescence band, which in turn is detected by the detector 340. The optical excitation light source 310, in addition to exciting fluorescence in the diamond material 320, also serves to reset the population of the m.sub.s=0 spin state of the ground state .sup.3A.sub.2 to a maximum polarization, or other desired polarization.
[0031] For continuous wave excitation, the optical excitation source 310 continuously pumps the NV centers, and the RF excitation source 330 sweeps across a frequency range that includes the zero splitting (when the m.sub.s=±1 spin states have the same energy) photon energy of approximately 2.87 GHz. The fluorescence for an RF sweep corresponding to a diamond material 320 with NV centers aligned along a single direction is shown in
[0032] In general, the diamond material 320 will have NV centers aligned along directions of four different orientation classes.
[0033] While
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[0035] The system 600 includes an optical light source 610, which directs optical light to an NV diamond material 620 with NV centers, or another magneto-optical defect center material with magneto-optical defect centers. An RF excitation source 630 provides RF radiation to the NV diamond material 620. The system 600 may include a magnetic field generator 670 which generates a magnetic field, which may be detected at the NV diamond material 620, or the magnetic field generator 670 may be external to the system 600. The magnetic field generator 670 may provide a biasing magnetic field.
[0036] The system 600 further includes a controller 680 arranged to receive a light detection signal from the optical detector 640 and to control the optical light source 610, the RF excitation source 630, and the magnetic field generator 670. The controller may be a single controller, or multiple controllers. For a controller including multiple controllers, each of the controllers may perform different functions, such as controlling different components of the system 600. The magnetic field generator 670 may be controlled by the controller 680 via an amplifier 660, for example.
[0037] The RF excitation source 630 may include a microwave coil or coils, for example. The RF excitation source 630 may be controlled to emit RF radiation with a photon energy resonant with the transition energy between the ground m.sub.s=0 spin state and the m.sub.s=±1 spin states as discussed above with respect to
[0038] The controller 680 is arranged to receive a light detection signal from the optical detector 640 and to control the optical light source 610, the RF excitation source 630, and the magnetic field generator 670. The controller 680 may include a processor 682 and a memory 684, in order to control the operation of the optical light source 610, the RF excitation source 630, and the magnetic field generator 670. The memory 684, which may include a nontransitory computer readable medium, may store instructions to allow the operation of the optical light source 610, the RF excitation source 630, and the magnetic field generator 670 to be controlled. That is, the controller 680 may be programmed to provide control.
[0039] RF Excitation Source Coils
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[0041] While
[0042] The substrate 720 may be a printed circuit board (PCB), for example, and the coils 710 may be layered in the PCB and separated from each other by dielectric material. The coils 710 may be formed of a conducting material such as a metal, such as copper, for example.
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[0044] The uniform spacing of the coils 710 and uniform spacing between the spiral shape coils allow the RF excitation source 630 to provide a uniform RF field in the NV diamond material 620 over the frequency range needed for magnetic measurement of the NV diamond material 620, which may enclosed by the coils 7. This arrangement provides both uniformity in phase and gain of the RF signal throughout the needed frequency range, and throughout the different regions of the NV diamond material 620. Further, the layered coils may be operated in a pulsed manner and in this arrangement in order to avoid unnecessary overlap interference. The interference is reduced in pulsed operation of the coils 710.
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[0046] The embodiments of the inventive concepts disclosed herein have been described in detail with particular reference to preferred embodiments thereof, but it will be understood by those skilled in the art that variations and modifications can be effected within the spirit and scope of the inventive concepts.