1,419 research outputs found
Influence of magnetic-field inhomogeneity on nonlinear magneto-optical resonances
In this work, a sensitivity of the rate of relaxation of ground-state atomic
coherences to magnetic-field inhomogeneities is studied. Such coherences give
rise to many interesting phenomena in light-atom interactions, and their
lifetimes are a limiting factor for achieving better sensitivity, resolution or
contrast in many applications. For atoms contained in a vapor cell, some of the
coherence-relaxation mechanisms are related to magnetic-field inhomogeneities.
We present a simple model describing relaxation due to such inhomogeneities in
a buffer-gas-free anti-relaxation coated cell. A relation is given between
relaxation rate and magnetic-field inhomogeneities including the dependence on
cell size and atomic spices. Experimental results, which confirm predictions of
the model, are presented. Different regimes, in which the relaxation rate is
equally sensitive to the gradients in any direction and in which it is
insensitive to gradients transverse to the bias magnetic field, are predicted
and demonstrated experimentally.Comment: 6 pages, 4 figures, Submitted to Phys. Rev.
AC Stark shift noise in QND measurement arising from quantum fluctuations of light polarization
In a recent letter [Auzinsh {\it{et. al.}} (physics/0403097)] we have
analyzed the noise properties of an idealized atomic magnetometer that utilizes
spin squeezing induced by a continuous quantum nondemolition measurement. Such
a magnetometer measures spin precession of atomic spins by detecting
optical rotation of far-detuned probe light. Here we consider maximally
squeezed probe light, and carry out a detailed derivation of the contribution
to the noise in a magnetometric measurement due to the differential AC Stark
shift between Zeeman sublevels arising from quantum fluctuations of the probe
polarization.Comment: This is a companion note to physics/040309
Can a quantum nondemolition measurement improve the sensitivity of an atomic magnetometer?
Noise properties of an idealized atomic magnetometer that utilizes spin
squeezing induced by a continuous quantum nondemolition measurement are
considered. Such a magnetometer measures spin precession of atomic spins by
detecting optical rotation of far-detuned light. Fundamental noise sources
include the quantum projection noise and the photon shot-noise. For measurement
times much shorter than the spin-relaxation time observed in the absence of
light () divided by , the optimal sensitivity of the
magnetometer scales as , so an advantage over the usual sensitivity
scaling as can be achieved. However, at longer measurement times,
the optimized sensitivity scales as , as for a usual shot-noise
limited magnetometer. If strongly squeezed probe light is used, the Heisenberg
uncertainty limit may, in principle, be reached for very short measurement
times. However, if the measurement time exceeds , the
scaling is again restored.Comment: Some details of calculations can be found in a companion note:
physics/040712
Hyperpolarized xenon nuclear spins detected by optical atomic magnetometry
We report the use of an atomic magnetometer based on nonlinear
magneto-optical rotation with frequency modulated light (FM NMOR) to detect
nuclear magnetization of xenon gas. The magnetization of a
spin-exchange-polarized xenon sample (cm at a pressure of bar,
natural isotopic abundance, polarization 1%), prepared remotely to the
detection apparatus, is measured with an atomic sensor (which is insensitive to
the leading field of 0.45 G applied to the sample; an independent bias field at
the sensor is G). An average magnetic field of nG induced by
the xenon sample on the 10-cm diameter atomic sensor is detected with
signal-to-noise ratio , limited by residual noise in the magnetic
environment. The possibility of using modern atomic magnetometers as detectors
of nuclear magnetic resonance and in magnetic resonance imaging is discussed.
Atomic magnetometers appear to be ideally suited for emerging low-field and
remote-detection magnetic resonance applications.Comment: 4 pages, 4 figure
Nonlinear magneto-optical rotation with modulated light in tilted magnetic fields
Larmor precession of laser-polarized atoms contained in
anti-relaxation-coated cells, detected via nonlinear magneto-optical rotation
(NMOR) is a promising technique for a new generation of ultra-sensitive atomic
magnetometers. For magnetic fields directed along the light propagation
direction, resonances in NMOR appear when linearly polarized light is
frequency- or amplitude-modulated at twice the Larmor frequency. Because the
frequency of these resonances depends on the magnitude but not the direction of
the field, they are useful for scalar magnetometry. New NMOR resonances at the
Larmor frequency appear when the magnetic field is tilted away from the light
propagation direction in the plane defined by the light propagation and
polarization vectors. These new resonances, studied both experimentally and
with a density matrix calculation in the present work, offer a convenient
method for NMOR-based vector magnetometry.Comment: Submitted to Phys. Rev. A, 6 pages, 9 figure
Production and detection of atomic hexadecapole at Earth's magnetic field
Anisotropy of atomic states is characterized by population differences and
coherences between Zeeman sublevels. It can be efficiently created and probed
via resonant interactions with light, the technique which is at the heart of
modern atomic clocks and magnetometers. Recently, nonlinear magneto-optical
techniques have been developed for selective production and detection of higher
polarization moments, hexadecapole and hexacontatetrapole, in the ground states
of the alkali atoms. Extension of these techniques into the range of
geomagnetic fields is important for practical applications. This is because
hexadecapole polarization corresponding to the Zeeman coherence,
with maximum possible for electronic angular momentum and
nuclear spin , is insensitive to the nonlinear Zeeman effect (NLZ). This
is of particular interest because NLZ normally leads to resonance splitting and
systematic errors in atomic magnetometers. However, optical signals due to the
hexadecapole moment decline sharply as a function of magnetic field. We report
a novel method that allows selective creation of a macroscopic long-lived
ground-state hexadecapole polarization. The immunity of the hexadecapole signal
to NLZ is demonstrated with F=2 Rb atoms at Earth's field.Comment: 4 pages, 5 figure
Selective addressing of high-rank atomic polarization moments
We describe a method of selective generation and study of polarization
moments of up to the highest rank possible for a quantum state with
total angular momentum . The technique is based on nonlinear magneto-optical
rotation with frequency-modulated light. Various polarization moments are
distinguished by the periodicity of light-polarization rotation induced by the
atoms during Larmor precession and exhibit distinct light-intensity and
frequency dependences. We apply the method to study polarization moments of
Rb atoms contained in a vapor cell with antirelaxation coating. Distinct
ultra-narrow (1-Hz wide) resonances, corresponding to different multipoles,
appear in the magnetic-field dependence of the optical rotation. The use of the
highest-multipole resonances has important applications in quantum and
nonlinear optics and in magnetometry.Comment: 5 pages, 6 figure
Nonlinear magneto-optical rotation with frequency-modulated light in the geophysical field range
Recent work investigating resonant nonlinear magneto-optical rotation (NMOR)
related to long-lived (\tau\ts{rel} \sim 1 {\rm s}) ground-state atomic
coherences has demonstrated potential magnetometric sensitivities exceeding
for small () magnetic
fields. In the present work, NMOR using frequency-modulated light (FM NMOR) is
studied in the regime where the longitudinal magnetic field is in the
geophysical range (), of particular interest for many
applications. In this regime a splitting of the FM NMOR resonance due to the
nonlinear Zeeman effect is observed. At sufficiently high light intensities,
there is also a splitting of the FM NMOR resonances due to ac Stark shifts
induced by the optical field, as well as evidence of alignment-to-orientation
conversion type processes. The consequences of these effects for FM-NMOR-based
atomic magnetometry in the geophysical field range are considered.Comment: 8 pages, 8 figure
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