| Literature DB >> 29662956 |
Wei Yuan1,2, Qiong Zhu1,2, Tang Su1,2, Yunyan Yao1,2, Wenyu Xing1,2, Yangyang Chen1,2, Yang Ma1,2, Xi Lin1,2, Jing Shi3, Ryuichi Shindou1,2, X C Xie1,2, Wei Han1,2.
Abstract
Spin superfluid is a novel emerging quantum matter arising from the Bose-Einstein condensate (BEC) of spin-1 bosons. We demonstrate the spin superfluid ground state in canted antiferromagnetic Cr2O3 thin film at low temperatures via nonlocal spin transport. A large enhancement of the nonlocal spin signal is observed below ~20 K, and it saturates from ~5 down to 2 K. We show that the spins can propagate over very long distances (~20 μm) in such spin superfluid ground state and that the nonlocal spin signal decreases very slowly as the spacing increases with an inverse relationship, which is consistent with theoretical prediction. Furthermore, spin superfluidity has been investigated in the canted antiferromagnetic phase of the (11[Formula: see text]0)-oriented Cr2O3 film, where the magnetic field dependence of the associated critical temperature follows a 2/3 power law near the critical point. The experimental demonstration of the spin superfluid ground state in canted antiferromagnet will be extremely important for the fundamental physics on the BEC of spin-1 bosons and paves the way for future spin supercurrent devices, such as spin-Josephson junctions.Entities:
Year: 2018 PMID: 29662956 PMCID: PMC5898847 DOI: 10.1126/sciadv.aat1098
Source DB: PubMed Journal: Sci Adv ISSN: 2375-2548 Impact factor: 14.136
Fig. 1The nonlocal spin transport in the spin superfluid ground state of the canted antiferromagnetic Cr2O3 thin film.
(A) The spin structure of single crystalline antiferromagnetic (0001)-oriented Cr2O3 thin film. Up (red arrows) and down (blue arrows) spins of the Cr3+ ions are aligned parallel the crystal’s [0001] orientation. (B) Schematic of the nonlocal spin transport geometry for the spin transport measurement in the spin superfluid state. The canted magnetization direction is controlled by the external magnetic field (B) along the x direction. In such canted antiferromagnetic configuration, the spin component (S + iS) that is perpendicular to the magnetic field direction becomes coherent in the spin superfluid state. (C) The second harmonic resistance in the nonlocal geometry measured on the nonlocal device as a function of the in-plane magnetic field angle at 2 K and 9 T. The spins are injected at the left Pt strip via the spin Seebeck effect. The collective spin transport in the spin superfluid ground state is probed at the right Pt strip via the inverse spin Hall effect. The nonlocal device is fabricated on the ~19-nm Cr2O3 thin film, and the spacing between two Pt strips (d) is 10 μm. The red curve is a sin (φ) fit for the experimental data (solid balls).
Fig. 2Temperature dependence of the nonlocal spin transport in the canted antiferromagnetic (0001)-oriented Cr2O3 thin film.
(A) The second harmonic resistance in the nonlocal geometry measured as a function of the in-plane rotation angle under the magnetic field of 9 T at 2, 5, 10, 15, and 30 K. (B) The nonlocal spin signal as a function of the temperature (T). Inset: The nonlocal spin signal as a function of 1/T. At low temperatures, in the spin superfluid ground state, the transverse spin component (S + iS) that is perpendicular to the magnetic field direction becomes coherent.
Fig. 3Spacing dependence of the nonlocal spin transport in spin superfluid ground state.
(A) The nonlocal spin signal as a function of 1/T for the spacing between the two Pt strips (d) of 2, 8, 14, and 20 μm. These results are obtained under the in-plane magnetic field of 9 T. (B) The nonlocal spin signal at 2 and 10 K in the spin superfluid ground state as a function of the spacing between the two Pt strips. The red dashed lines are the fitting curves based on spin superfluid model using the Eq. 2.
Fig. 4Spin superfluid ground state in the canted antiferromagnet (110)-oriented Cr2O3.
(A) The spin structure of single crystalline antiferromagnetic (110)-oriented Cr2O3 thin film. Up (red arrows) and down (blue arrows) spins of the Cr3+ ions are aligned in the film plane. (B) The nonlocal spin signal at 2 K as a function of the magnetic field. The nonlocal spin signal is observed when the magnetic field is higher than the spin flop field. (C) The critical temperature as a function of the magnetic field. Red line presents the best fitting curve, which follows a relationship of TC ~ (B − 3.5)0.65.