Ultra-sensitive magnetometry based on free precession of nuclear spins

C. Gemmel,W. Heil, S. Karpuk,K. Lenz, Ch. Ludwig,Yu. Sobolev,K. Tullney, M. Burghoff,W. Kilian, S. Knappe-Grüneberg,W. Müller,A. Schnabel, F. Seifert, L. Trahms, St. Baeßler

The European Physical Journal D(2010)

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摘要
We discuss the design and performance of a very sensitive low-field magnetometer based on the detection of free spin precession of gaseous, nuclear polarized 3 He or 129 Xe samples with a SQUID as magnetic flux detector. The device will be employed to control fluctuating magnetic fields and gradients in a new experiment searching for a permanent electric dipole moment of the neutron. Furthermore, with the detection of the free precession of co-located 3 He/ 129 Xe nuclear spins it can be used as ultra-sensitive probe for non-magnetic spin interactions, since the magnetic dipole interaction (Zeeman-term) drops out. Characteristic spin precession times T 2 * of up to 60 h were measured. The achieved signal-to-noise ratio of more than 5000:1 leads to an expected sensitivity level (Cramer-Rao lower bound) of δB≈1 fT after an integration time of 220 s and of δB≈10 -4 fT after one day. By means of a co-located 3 He/ 129 Xe magnetometer, noise sources inherent in the magnetometer could be investigated, showing that CRLB is fulfilled, at least down to δB≈10 -2 fT. The reason for such a high sensitivity is that free precessing 3 He ( 129 Xe) nuclear spins are almost completely decoupled from the environment. Therefore, this type of magnetometer is particularly attractive for precision field measurements where long-term stability is required.
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关键词
Phase Noise,Free Precession,Spin Precession,Transverse Relaxation Rate,Ultra Cold Neutron
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