Magnetic field induced polarization difference between hyperons and anti-hyperons
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[1] W. Deng,et al. Thermal vorticity and spin polarization in heavy-ion collisions , 2018, Physical Review C.
[2] L. Csernai,et al. Λ and Λ¯ spin interaction with meson fields generated by the baryon current in high energy nuclear collisions , 2018, Physical Review C.
[3] Berndt Muller,et al. Chiral magnetic effect and an experimental bound on the late time magnetic field strength , 2018, Physical Review D.
[4] D. Kharzeev,et al. Charge-dependent flow induced by magnetic and electric fields in heavy ion collisions , 2018, Physical Review C.
[5] G. S. Averichev,et al. Global polarization of Λ hyperons in Au + Au collisions at sNN=200 GeV , 2018, Physical Review C.
[6] Zebo Tang,et al. Probing vorticity structure in heavy-ion collisions by local $Λ$ polarization , 2018, 1803.00867.
[7] S. Shi,et al. Searching for the subatomic swirls in the CuCu and CuAu collisions , 2017, Physics Letters B.
[8] I. Zahed,et al. Pion Condensation by Rotation in a Magnetic Field. , 2017, Physical review letters.
[9] S. Shi,et al. Anomalous chiral transport in heavy ion collisions from Anomalous-Viscous Fluid Dynamics , 2017, Annals of Physics.
[10] N. Yamamoto,et al. Anomalous effects of dense matter under rotation , 2017, 1711.02190.
[11] Z. Yin,et al. Chiral magnetic currents with QGP medium response in heavy-ion collisions at RHIC and LHC energies , 2017, 1709.04662.
[12] G. S. Averichev,et al. Global Λ hyperon polarization in nuclear collisions , 2017 .
[13] C. Ko,et al. Λ hyperon polarization in relativistic heavy ion collisions from a chiral kinetic approach , 2017, 1706.09467.
[14] S. Shi,et al. Quantifying the Chiral Magnetic Effect from Anomalous-Viscous Fluid Dynamics , 2017, 1704.05531.
[15] L. Pang,et al. Global Λ polarization in heavy-ion collisions from a transport model , 2017, 1704.01507.
[16] S. Shi,et al. Out-of-equilibrium chiral magnetic effect from chiral kinetic theory , 2017, 1703.08856.
[17] S. Gongyo,et al. Effects of rotation and boundaries on chiral symmetry breaking of relativistic fermions , 2017, 1702.08266.
[18] Nasim,et al. Global Λ hyperon polarization in nuclear collisions , 2017, Nature.
[19] S. Gongyo,et al. Interacting fermions in rotation: chiral symmetry restoration, moment of inertia and thermodynamics , 2016, Journal of High Energy Physics.
[20] S. Voloshin,et al. Global hyperon polarization at local thermodynamic equilibrium with vorticity, magnetic field and feed-down , 2016, 1610.02506.
[21] F. Becattini,et al. Numerical magneto-hydrodynamics for relativistic nuclear collisions , 2016, 1609.03042.
[22] Xu-Guang Huang,et al. Novel quantum phenomena induced by strong magnetic fields in heavy-ion collisions , 2016, 1609.00747.
[23] K. Fukushima,et al. Boundary effects and gapped dispersion in rotating fermionic matter , 2016, 1608.00336.
[24] J. Liao,et al. Pairing Phase Transitions of Matter under Rotation. , 2016, Physical review letters.
[25] F. Becattini,et al. Erratum: Λ polarization in peripheral heavy ion collisions [Phys. Rev. C 88, 034905 (2013)] , 2016 .
[26] L. Pang,et al. Vortical Fluid and Λ Spin Correlations in High-Energy Heavy-Ion Collisions. , 2016, Physical review letters.
[27] W. Deng,et al. Vorticity in heavy-ion collisions , 2016, 1603.06117.
[28] Zi-Wei Lin,et al. Rotating quark-gluon plasma in relativistic heavy ion collisions , 2016, 1602.06580.
[29] Qun Wang,et al. Electromagnetic fields with electric and chiral magnetic conductivities in heavy ion collisions , 2016, 1602.02223.
[30] K. Fukushima,et al. Analogy between rotation and density for Dirac fermions in a magnetic field , 2015, 1512.08974.
[31] G. Wang,et al. Chiral Magnetic and Vortical Effects in High-Energy Nuclear Collisions --- A Status Report , 2015, 1511.04050.
[32] K. Tuchin. Initial value problem for magnetic fields in heavy ion collisions , 2015, 1508.06925.
[33] J. Liao,et al. Chiral vortical wave and induced flavor charge transport in a rotating quark-gluon plasma , 2015, 1504.03201.
[34] V. A. Miransky,et al. Quantum field theory in a magnetic field: From quantum chromodynamics to graphene and Dirac semimetals , 2015, 1503.00732.
[35] F. Becattini,et al. A study of vorticity formation in high energy nuclear collisions , 2015, 1501.04468.
[36] H. Stöcker,et al. Vorticity in peripheral collisions at the Facility for Antiproton and Ion Research and at the JINR Nuclotron-based Ion Collider fAcility , 2014 .
[37] Xu Cai,et al. A systematic study of magnetic field in Relativistic Heavy-ion Collisions in the RHIC and LHC energy regions , 2014, 1408.5694.
[38] G. S. Averichev,et al. Beam-energy dependence of charge separation along the magnetic field in Au+Au collisions at RHIC. , 2014, Physical review letters.
[39] Zi-Wei Lin. Evolution of transverse flow and effective temperatures in the parton phase from a multiphase transport model , 2014, 1403.6321.
[40] E. Grossi,et al. Local thermodynamical equilibrium and the $$\beta $$β frame for a quantum relativistic fluid , 2014, 1403.6265.
[41] D. Kharzeev,et al. Magnetohydrodynamics, charged currents, and directed flow in heavy ion collisions , 2014, 1401.3805.
[42] J. Liao. Anomalous transport effects and possible environmental symmetry ‘violation’ in heavy-ion collisions , 2014, Pramana.
[43] L. Mclerran,et al. Comments about the electromagnetic field in heavy-ion collisions , 2013, 1305.0774.
[44] F. Becattini,et al. Λ polarization in peripheral heavy ion collisions , 2013, 1304.4427.
[45] Yuji Hirono,et al. Lattice QCD in rotating frames. , 2013, Physical review letters.
[46] L. Zanna,et al. Relativistic distribution function for particles with spin at local thermodynamical equilibrium , 2013, 1303.3431.
[47] L. Csernai,et al. Flow Vorticity in Peripheral High Energy Heavy Ion Collisions , 2013, 1302.5310.
[48] Hui Liu,et al. Possible higher order correction to the chiral vortical conductivity in a gauge field plasma , 2012, 1210.0969.
[49] J. Liao,et al. Azimuthally fluctuating magnetic field and its impacts on observables in heavy-ion collisions , 2012, 1209.6594.
[50] A. Bzdak,et al. Charge-Dependent Correlations in Relativistic Heavy Ion Collisions and the Chiral Magnetic Effect , 2012, 1207.7327.
[51] W. Deng,et al. Event-by-event generation of electromagnetic fields in heavy-ion collisions , 2012, 1201.5108.
[52] A. Bzdak,et al. Event-by-event fluctuations of magnetic and electric fields in heavy ion collisions , 2011, 1111.1949.
[53] D. Kharzeev,et al. Testing the chiral magnetic and chiral vortical effects in heavy ion collisions. , 2010, Physical review letters.
[54] M. Asakawa,et al. Electric charge separation in strong transient magnetic fields , 2010, 1003.2436.
[55] A. Bzdak,et al. Remarks on possible local parity violation in heavy ion collisions , 2009, 0912.5050.
[56] D. Son,et al. Hydrodynamics with triangle anomalies. , 2009, Physical review letters.
[57] J. Rizzo,et al. Angular momentum conservation in heavy ion collisions at very high energy , 2007, 0711.1253.
[58] Xin-Nian Wang,et al. Global quark polarization in non-central A+A collisions , 2007, 0710.2943.
[59] M. Gyulassy,et al. Polarization probes of vorticity in heavy ion collisions , 2007, 0708.0035.
[60] C. Ko,et al. Multiphase transport model for relativistic heavy ion collisions , 2004, nucl-th/0411110.
[61] Xin-Nian Wang,et al. Globally polarized quark-gluon plasma in noncentral A + A collisions. , 2004, Physical review letters.