Methodology to measure sensitive magnetic fields through coupled pump/probe fields
View Patent ↗Various embodiments are directed to systems, apparatus and methods for measuring sensitive magnetic fields through coupled pump/probe fields associated with an NV diamond material within a resonant cavity while controlling beam power and frequency fluctuations.
1. A magnetometer, comprising:
a resonant cavity comprising a first mirror positioned at a first end of the resonant cavity and a second mirror positioned at a second end of the resonant cavity, the second end opposing the first end;
a nitrogen vacancy (NV) diamond material positioned in the resonant cavity between the first and second mirrors;
an excitation beam source configured to direct an excitation beam into the resonant cavity, the excitation beam configured to excite the NV diamond material from a ground state to an excited state;
a probe beam source configured to direct a probe beam into the resonant cavity, the probe beam configured to probe an intermediate singlet state of the NV diamond material;
a radio frequency (RF) source configured to emit RF radiation with a photon energy resonant with transition energy between ground and excited state of the NV diamond material;
a photodetector, configured to measure probe beam power; and
a first controller, configured to reduce probe beam power fluctuations by correspondingly adapting a control signal associated with at least one of probe beam power and excitation beam power;
wherein a strength and direction of a magnetic field proximate the NV diamond material may be determined using probe beam measurements,
the first controller is configured to adapt at least one of probe beam power and excitation beam power in accordance with a proportional-integral-derivative (PID) control loop, and
the first controller PID control loop is further responsive to changes of the RF radiation power level.
2. The laser cavity magnetometer of claim 1 , wherein the first controller PID control loop is responsive to changes of a 532-nm excitation beam.
3. The magnetometer of claim 1 , further comprising a second controller, configured to reduce probe beam power fluctuations by correspondingly adapting a control signal associated with a resonant cavity tuning element.
4. The magnetometer of claim 3 , wherein the second controller is configured to adapt the resonant cavity tuning element in accordance with a proportional-integral-derivative (PID) control loop responsive to changes in power level over approximately 10 KHz.
5. The magnetometer of claim 4 , wherein the second controller is configured to use at least one of peak locking and side locking as part of the PID control loop.
6. The magnetometer of claim 3 , wherein the resonant cavity tuning element comprises an etalon tuning element within the resonant cavity.
7. The magnetometer of claim 3 , wherein the resonant cavity tuning element comprises a birefringent filter within the resonant cavity.
8. The magnetometer of claim 1 , wherein the excitation beam comprises a green wavelength beam, and the probe beam comprises an approximately 1042 nm beam.
9. The magnetometer of claim 1 , wherein the first mirror comprises a fold mirror and the second mirror comprises an end mirror, the excitation beam source positioned to direct the excitation beam through the fold mirror toward the end mirror, the probe beam source positioned to direct the probe beam to an inner surface of the fold mirror for reflection thereby toward the fold mirror.
10. The magnetometer of claim 1 , wherein the RF field is pulsed at between approximately 1 kHz and 5 kHz, and probe beam measurements are taken during pulse peak.
11. The magnetometer of claim 1 , further comprising a lock-in detector configured to synchronize probe beam measurements with RF field pulse peaks.
12. The magnetometer of claim 1 , further comprising a sum and frequency generation (SFG) crystal configured to generate the excitation beam in response to a received beam of the same wavelength as the probe beam and a programming beam having a wavelength selected to cause the SFG to generate a green wavelength excitation beam in response to the wavelength of the probe beam.
13. The magnetometer of claim 11 , wherein the probe beam has a wavelength of approximately 1042 nm and the programming beam has a wavelength of approximately 1090 nm.
14. A magnetometer, comprising:
a resonant cavity having nitrogen vacancy (NV) diamond material positioned therein to receive therethrough an excitation beam from an excitation beam source and a probe beam from a probe beam source, the NV doped diamond material reaching an excitation spin state in response to the excitation beam, and having an intermediate singlet state population probed by the probe beam to derive therefrom a determination of magnetic field strength and direction;
a dichroic mirror positioned to receive the excitation beam and the probe beam from the NV doped diamond material and direct beam wavelengths associated with the probe beam to a photodetector, the photodetector responsively providing a monitoring signal indicative of a power of the probe beam;
a radio frequency (RF) source configured to emit RF radiation with a photon energy resonant with transition energy between ground and excited state of the NV diamond material;
a first controller, configured to reduce probe beam power fluctuations by correspondingly adapting a control signal associated with at least one of probe beam power and excitation beam power; and
a sum and frequency generation (SFG) crystal configured to generate the excitation beam in response to a received beam of the same wavelength as the probe beam and a programming beam having a wavelength selected to cause the SFG to generate a green wavelength excitation beam in response to the wavelength of the probe beam.
15. The magnetometer of claim 14 , wherein the excitation beam comprises a green wavelength beam, and the probe beam comprises an approximately 1042 nm beam.
16. The magnetometer of claim 14 , further comprising a fold mirror and the second mirror comprises an end mirror, the excitation beam source positioned to direct the excitation beam through the fold mirror toward the end mirror, the probe beam source positioned to direct the probe beam to an inner surface of the fold mirror for reflection thereby toward the fold mirror.
17. The magnetometer of claim 14 , wherein the RF field is pulsed at between approximately 1 kHz and 5 kHz, and probe beam measurements are taken during pulse peak.
18. The magnetometer of claim 14 , further comprising a lock-in detector configured to synchronize probe beam measurements with RF field pulse peaks.