Anomaly-induced Quadrupole Moment of the Neutron in Magnetic Field
arXiv:1104.0998 · doi:10.1103/PhysRevD.84.037503
Abstract
The neutrons cannot possess a quadrupole moment in the vacuum. Nevertheless, we show that in the presence of an external magnetic field the neutrons acquire a new type of quadrupole moment involving the components of spin and magnetic field. This "chiral magnetic" quadrupole moment arises from the interplay of the chiral anomaly and the magnetic field; we estimate its value for the neutron in the static limit, and find . The detection of the quadrupole moment of the neutron would provide a novel test of the role of the chiral anomaly in low-energy QCD and can be possible in the presence of both magnetic and inhomogeneous electric fields. The quadrupole moment of the neutron may affect e.g. the properties of neutron stars and magnetars.
2 pages; extended version
References in corpus (3)
- An Improved Experimental Limit on the Electric Dipole Moment of the Neutron
- Rapid Cooling of the Neutron Star in Cassiopeia A Triggered by Neutron Superfluidity in Dense Matter
- Chiral magnetic wave at finite baryon density and the electric quadrupole moment of quark-gluon plasma in heavy ion collisions
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- Quantum effects on an atom with a magnetic quadrupole moment in a region with a time-dependent magnetic field
- Anomaly-induced charges in baryons
- On a neutral particle with a magnetic quadrupole moment in a uniform effective magnetic field
- Tensor supercurrent in QCD