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1.
Opt Express ; 31(24): 40871-40880, 2023 Nov 20.
Article in English | MEDLINE | ID: mdl-38041377

ABSTRACT

Grating magneto-optical traps are an enabling quantum technology for portable metrological devices with ultracold atoms. However, beam diffraction efficiency and angle are affected by wavelength, creating a single-optic design challenge for laser cooling in two stages at two distinct wavelengths - as commonly used for loading, e.g., Sr or Yb atoms into optical lattice or tweezer clocks. Here, we optically characterize a wide variety of binary gratings at different wavelengths to find a simple empirical fit to experimental grating diffraction efficiency data in terms of dimensionless etch depth and period for various duty cycles. The model avoids complex 3D light-grating surface calculations, yet still yields results accurate to a few percent across a broad range of parameters. Gratings optimized for two (or more) wavelengths can now be designed in an informed manner suitable for a wide class of atomic species enabling advanced quantum technologies.

2.
Opt Express ; 31(20): 33582-33595, 2023 Sep 25.
Article in English | MEDLINE | ID: mdl-37859136

ABSTRACT

Magnetic field imaging is a valuable resource for signal source localization and characterization. This work reports an optically pumped magnetometer (OPM) based on the free-induction-decay (FID) protocol, that implements microfabricated cesium (Cs) vapor cell technology to visualize the magnetic field distributions resulting from various magnetic sources placed close to the cell. The slow diffusion of Cs atoms in the presence of a nitrogen (N2) buffer gas enables spatially independent measurements to be made within the same vapor cell by translating a 175 µm diameter probe beam over the sensing area. For example, the OPM was used to record temporal and spatial information to reconstruct magnetic field distributions in one and two dimensions. The optimal magnetometer sensitivity was estimated to be 0.43 pT/H z within a Nyquist limited bandwidth of 500 Hz. Furthermore, the sensor's dynamic range exceeds the Earth's field of approximately 50 µT, which provides a framework for magnetic field imaging in unshielded environments.

3.
Sensors (Basel) ; 23(8)2023 Apr 15.
Article in English | MEDLINE | ID: mdl-37112348

ABSTRACT

Machine learning (ML) is an effective tool to interrogate complex systems to find optimal parameters more efficiently than through manual methods. This efficiency is particularly important for systems with complex dynamics between multiple parameters and a subsequent high number of parameter configurations, where an exhaustive optimisation search would be impractical. Here we present a number of automated machine learning strategies utilised for optimisation of a single-beam caesium (Cs) spin exchange relaxation free (SERF) optically pumped magnetometer (OPM). The sensitivity of the OPM (T/Hz), is optimised through direct measurement of the noise floor, and indirectly through measurement of the on-resonance demodulated gradient (mV/nT) of the zero-field resonance. Both methods provide a viable strategy for the optimisation of sensitivity through effective control of the OPM's operational parameters. Ultimately, this machine learning approach increased the optimal sensitivity from 500 fT/Hz to <109fT/Hz. The flexibility and efficiency of the ML approaches can be utilised to benchmark SERF OPM sensor hardware improvements, such as cell geometry, alkali species and sensor topologies.

4.
Opt Lett ; 48(1): 37-40, 2023 Jan 01.
Article in English | MEDLINE | ID: mdl-36563364

ABSTRACT

We demonstrate the integration of micro-electro-mechanical-systems (MEMS) scanning mirrors as active elements for the local optical pumping of ultra-cold atoms in a magneto-optical trap. A pair of MEMS mirrors steer a focused resonant beam through a cloud of trapped atoms shelved in the F = 1 ground-state of 87Rb for spatially selective fluorescence of the atom cloud. Two-dimensional control is demonstrated by forming geometrical patterns along the imaging axis of the cold atom ensemble. Such control of the atomic ensemble with a microfabricated mirror pair could find applications in single atom selection, local optical pumping, and arbitrary cloud shaping. This approach has significant potential for miniaturization and in creating portable control systems for quantum optic experiments.

5.
Sci Rep ; 12(1): 12888, 2022 Jul 28.
Article in English | MEDLINE | ID: mdl-35902634

ABSTRACT

Self-oscillating atomic magnetometers, in which the precession of atomic spins in a magnetic field is driven by resonant modulation, offer high sensitivity and dynamic range. Phase-coherent feedback from the detected signal to the applied modulation creates a resonant spin maser system, highly responsive to changes in the background magnetic field. Here we show a system in which the phase condition for resonant precession is met by digital signal processing integrated into the maser feedback loop. This system uses a modest chip-scale laser and mass-produced dual-pass caesium vapour cell and operates in a 50 [Formula: see text]T field, making it a suitable technology for portable measurements of the geophysical magnetic field. We demonstrate a Cramér-Rao lower bound-limited resolution of 50 fT at 1 s sampling cadence, and a sensor bandwidth of 10 kHz. This device also represents an important class of atomic system in which low-latency digital processing forms an integral part of a coherently-driven quantum system.

6.
Opt Lett ; 47(5): 1230-1233, 2022 Mar 01.
Article in English | MEDLINE | ID: mdl-35230334

ABSTRACT

Light-atom interactions during spin preparation and readout in optically pumped magnetometers can lead to inaccuracies. We demonstrate a novel, to the best of our knowledge, detection strategy that exploits an interrogation sequence in the pulsed free-induction-decay modality to suppress these systematic errors. The technique is predicated on monitoring the dynamics of preoriented atomic spins as they evolve unperturbed during a dark interval, by subsequently applying a time-delayed optical pulse to infer the spin state's phase. This detection mode reduced light shift inaccuracies to within 0.6 nT, and could be employed in a wide variety of high-precision atomic magnetometry experiments.


Subject(s)
Magnetometry , Magnetometry/methods
7.
Rev Sci Instrum ; 91(4): 045103, 2020 Apr 01.
Article in English | MEDLINE | ID: mdl-32357754

ABSTRACT

We present an unshielded, double-resonance magnetometer in which we have implemented a feed-forward measurement scheme in order to suppress periodic magnetic noise arising from, and correlated with, the mains electricity alternating current line. The technique described here uses a single sensor to track ambient periodic noise and feed forward to suppress it in a subsequent measurement. This feed forward technique has shown significant noise suppression of electrical mains-noise features of up to 22 dB under the fundamental peak at 50 Hz, 3 dB at the first harmonic (100 Hz), and 21 dB at the second harmonic (150 Hz). This technique is software based, requires no additional hardware, and is easy to implement in an existing magnetometer.

8.
Opt Express ; 26(23): 30523-30531, 2018 Nov 12.
Article in English | MEDLINE | ID: mdl-30469950

ABSTRACT

We demonstrate an optically pumped magnetometer (OPM) operated in a free-induction-decay (FID) configuration that is capable of tracking oscillating magnetic signals in the presence of a 50 µT static field. Excellent waveform reconstruction is demonstrated for low frequency modulations with respect to the Nyquist limited bandwidth. A 100 pT oscillation was successfully reconstructed using signal averaging, and an optimum sensitivity of 3.9 pT/Hz was measured from the spectrum of the residuals relative to the sinusoidal fit. The impact of the pump-probe repetition rate and spin depolarization on the frequency response of the sensor is investigated in detail using miniaturized vapor cell technology, with the (-3 dB) bandwidths residing beyond the Nyquist limit in each case. We also discuss technical limitations associated with the magnetometer when exposed to oscillating fields of sufficiently high amplitude or frequency. This is discussed in the context of potential distortions arising in the reproduced signals, induced by frequency modulation (FM) and aliasing artefacts.

9.
Sci Rep ; 7(1): 384, 2017 03 24.
Article in English | MEDLINE | ID: mdl-28341834

ABSTRACT

We have laser cooled 3 × 106 87Rb atoms to 3 µK in a micro-fabricated grating magneto-optical trap (GMOT), enabling future mass-deployment in highly accurate compact quantum sensors. We magnetically trap the atoms, and use Larmor spin precession for magnetic sensing in the vicinity of the atomic sample. Finally, we demonstrate an array of magneto-optical traps with a single laser beam, which will be utilised for future cold atom gradiometry.

10.
Opt Lett ; 41(10): 2177-80, 2016 May 15.
Article in English | MEDLINE | ID: mdl-27176956

ABSTRACT

We report the first use of a ring cavity to both enhance the output power and dramatically narrow the linewidth (<1 MHz) of blue light generated by four-wave mixing in a rubidium vapor cell. We find that the high output power available in our cavity-free system leads to power broadening of the generated blue light linewidth. Our ring cavity removes this limitation, allowing high output power and narrow linewidth to be achieved concurrently. As the cavity blue light is widely tunable over the Rb855S1/2F=3→6P3/2 transition, this narrow linewidth light would be suitable for near-resonant rubidium studies including, for example, second-stage laser cooling.

11.
Opt Express ; 23(3): 2375-82, 2015 Feb 09.
Article in English | MEDLINE | ID: mdl-25836105

ABSTRACT

We report on the fabrication and diffraction-limited characterization of parabolic focusing micromirrors. Sub-micron beam waists are measured for mirrors with 10-µm radius aperture and measured fixed focal lengths in the range from 24 µm to 36 µm. Optical characterization of the 3D intensity in the near-field produced when the device is illuminated with collimated light is performed using a modified confocal microscope. Results are compared directly with angular spectrum simulations, yielding strong agreement between experiment and theory, and identifying the competition between diffraction and focusing in the regime probed.

12.
Opt Express ; 21(16): 18712-23, 2013 Aug 12.
Article in English | MEDLINE | ID: mdl-23938787

ABSTRACT

We demonstrate a system for fast and agile digital control of laser phase, amplitude and frequency for applications in coherent atomic systems. The full versatility of a direct digital synthesis radiofrequency source is faithfully transferred to laser radiation via acousto-optic modulation. Optical beatnotes are used to measure phase steps up to 2π, which are accurately implemented with a resolution of ≤ 10 mrad. By linearizing the optical modulation process, amplitude-shaped pulses of durations ranging from 500 ns to 500 ms, in excellent agreement with the programmed functional form, are demonstrated. Pulse durations are limited only by the 30 ns rise time of the modulation process, and a measured extinction ratio of > 5 × 10(11) is achieved. The system presented here was developed specifically for controlling the quantum state of trapped ions with sequences of multiple laser pulses, including composite and bichromatic pulses. The demonstrated techniques are widely applicable to other atomic systems ranging across quantum information processing, frequency metrology, atom interferometry, and single-photon generation.

13.
Opt Lett ; 35(20): 3453-5, 2010 Oct 15.
Article in English | MEDLINE | ID: mdl-20967097

ABSTRACT

A planar triplet of diffraction gratings is used to transform a single laser beam into a four-beam tetrahedral magneto-optical trap. This "flat" pyramid diffractor geometry is ideal for future microfabrication. We demonstrate the technique by trapping and subsequently sub-Doppler cooling (87)Rb atoms to 30 µK.

14.
Opt Express ; 18(1): 187-92, 2010 Jan 04.
Article in English | MEDLINE | ID: mdl-20173838

ABSTRACT

We demonstrate the first synchronously in-well pumped vertical-external-cavity surface-emitting laser (VECSEL). Depending on the cavity mismatch, laser pulses with a duration from 1 ps to 7 ps at a repetition rate of 76 MHz were generated directly from the laser at 860 nm. The application of extra-cavity pulse compression further shortened the pulse to a duration of 210 fs providing a peak power of 226 W.


Subject(s)
Lasers, Solid-State , Refractometry/instrumentation , Transducers , Equipment Design , Equipment Failure Analysis
15.
Opt Express ; 17(16): 13601-8, 2009 Aug 03.
Article in English | MEDLINE | ID: mdl-19654767

ABSTRACT

We have realized a 4-beam pyramidal magneto-optical trap ideally suited for future microfabrication. Three mirrors split and steer a single incoming beam into a tripod of reflected beams, allowing trapping in the four-beam overlap volume. We discuss the influence of mirror angle on cooling and trapping, finding optimum efficiency in a tetrahedral configuration. We demonstrate the technique using an ex-vacuo mirror system to illustrate the previously inaccessible supra-plane pyramid MOT configuration. Unlike standard pyramidal MOTs both the pyramid apex and its mirror angle are non-critical and our MOT offers improved molasses free from atomic shadows in the laser beams. The MOT scheme naturally extends to a 2-beam refractive version with high optical access. For quantum gas experiments, the mirror system could also be used for a stable 3D tetrahedral optical lattice.


Subject(s)
Lenses , Magnetics/instrumentation , Optical Devices , Optical Tweezers , Computer Simulation , Computer-Aided Design , Equipment Design , Equipment Failure Analysis , Light , Models, Theoretical , Scattering, Radiation
16.
Rev Sci Instrum ; 79(8): 083702, 2008 Aug.
Article in English | MEDLINE | ID: mdl-19044352

ABSTRACT

We report on a frequency doubled 980 nm vertical external cavity surface emitting laser for applications in confocal laser scanning microscopy. The beam quality, wavelength flexibility, and low noise characteristics of this compact source make this prolific imaging technique an exemplary tool. Single pass frequency doubling via KNbO(3) was demonstrated, yielding 1.8 mW at 490 nm with a near diffraction limited beam quality. Detailed analysis and comparison of the laser performance with the current standard argon ion laser revealed clear advantages of the solid-state source for confocal imaging. Imaging of fluorescein and eGFP labeled biological samples using the attenuated solid-state source provided high-resolution images at lower cost and with improved reliability.


Subject(s)
Lasers , Microscopy, Confocal/instrumentation , Animals , Cells, Cultured , Convallaria/anatomy & histology , Fluorescein/metabolism , Fluorescent Antibody Technique, Indirect , Fluorescent Dyes/metabolism , Green Fluorescent Proteins/metabolism , Hippocampus/cytology , Neurons/metabolism , Niobium/chemistry , Oxides/chemistry , Plant Roots/cytology , Plant Roots/metabolism , Potassium/chemistry , Rats , Semiconductors , T-Lymphocytes/metabolism
17.
Appl Opt ; 45(29): 7729-35, 2006 Oct 10.
Article in English | MEDLINE | ID: mdl-17068611

ABSTRACT

We report the operation of an optical in-well-pumped vertical-external-cavity surface-emitting laser. The laser delivers 1 W at 855 nm and is pumped with a cost-effective fiber-coupled laser diode emitting at 806 nm. The laser modal gain is examined and ways of optimizing the system are investigated and discussed.

18.
Phys Med Biol ; 49(20): 4757-63, 2004 Oct 21.
Article in English | MEDLINE | ID: mdl-15566173

ABSTRACT

We report on a novel and compact reliable laser source capable of short-wavelength two-photon laser scanning fluorescence microscopy based on soliton self-frequency shift effects in photonic crystal fibre. We demonstrate the function of the system by performing two-photon microscopy of smooth muscle cells and cardiac myocytes from the rat pulmonary vein and Chinese hamster ovary cells loaded with the fluorescent calcium indicator fura-2/AM.


Subject(s)
Endothelial Cells/cytology , Fura-2/analogs & derivatives , Lasers , Microscopy, Confocal/instrumentation , Microscopy, Fluorescence, Multiphoton/instrumentation , Microscopy, Fluorescence, Multiphoton/methods , Myocytes, Cardiac/cytology , Animals , Calcium/metabolism , Cells, Cultured , Cricetinae , Cricetulus , Crystallization/methods , Endothelial Cells/metabolism , Equipment Failure Analysis , Fiber Optic Technology , Image Enhancement/instrumentation , Image Enhancement/methods , Microscopy, Confocal/methods , Myocytes, Cardiac/metabolism , Photons , Rats , Reproducibility of Results , Sensitivity and Specificity
19.
J Biomed Opt ; 9(5): 922-7, 2004.
Article in English | MEDLINE | ID: mdl-15447012

ABSTRACT

We report the application of a simple yet powerful modular pulse compression system based on photonic crystal fibers that improves on incumbent two-photon laser scanning fluorescence microscopy techniques. This system provides more than a sevenfold increase in fluorescence yield when compared with a commercial two-photon microscopy system. From this, we infer pulses of IR radiation of less than 35 fs duration reaching the sample.


Subject(s)
Fiber Optic Technology/instrumentation , Microscopy, Confocal/instrumentation , Microscopy, Fluorescence, Multiphoton/instrumentation , Muscle, Smooth, Vascular/ultrastructure , Animals , Crystallization/methods , Equipment Design , Equipment Failure Analysis , Fiber Optic Technology/methods , Guinea Pigs , Microscopy, Confocal/methods , Microscopy, Fluorescence, Multiphoton/methods , Photons , Rats , Reproducibility of Results , Sensitivity and Specificity
20.
Opt Express ; 12(11): 2365-70, 2004 May 31.
Article in English | MEDLINE | ID: mdl-19475072

ABSTRACT

A novel technique is demonstrated for stabilizing an intra-cavity etalon used for single-mode selection in a laser cavity. By appropriate polarization analysis of the reflection from an etalon designed as a quarterwave plate an electronic signal can be derived, that enables the implementation of an electronic stabilization scheme. This scheme obviates the need for any modulation of the etalon in order to ensure stable single mode operation of a cw tunable laser.

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