论文标题
单轴性手性磁铁dyni $ _3 $ ga $ _ {9} $在helimagnetic和铁肢之间的竞争
Competition between helimagnetic and ferroquadrupolar orderings in a monoaxial chiral magnet DyNi$_3$Ga$_{9}$ studied by resonant x-ray diffraction
论文作者
论文摘要
在稀有地球的单轴手性磁铁dyni $ _3 $ ga $ _ {9} $中,谐振X射线衍射已研究。由$ j = 15/2 $的大角度矩引起的磁偶极子和电二极管自由度,结合了对称和反对称交换的相互作用以及晶体场各向异性,从而引起了竞争的有序阶段。我们表明,在$ ab $ - 平面中以$ q \ sim(0,0,0,0.43)$低于$ t _ {\ text {n}} = 10 $ k的不良呼吸顺序形成了反磁性的dy瞬间$ t _ {\ text {n}}^{\; \ prime} = 9.0 $ k,并以$ q =(0,0,0,0)$ at $ t _ {\ t _ {\ text {n}}}}^{n}}^{\ prime \ prime \ prime \ prime \ prime} = 8.5 $ k的canted Antyferromagnetic订单。磁性螺旋性与dyni $ _3 $ ga $ _ {9} $中的晶体手性的关系也是唯一确定的。在$ t _ {\ text {n}}}^{\ prime \ prime} $下方观察到$(6,0,0)$ bragg峰的分裂,反映了由于ferroquadrupole订单而导致的晶格失真。在倾斜的抗铁磁阶段,当温度在弱磁场中扫除时,自旋流动过渡在5 K处进行。我们从上述竞争能量的角度讨论了这些转变。
Successive phase transitions in a rare-earth monoaxial chiral magnet DyNi$_3$Ga$_{9}$ have been investigated by resonant x-ray diffraction. Magnetic dipole and electric quadrupole degrees of freedom arising from the large angular moment of $J=15/2$, in combination with the symmetric and antisymmetric exchange interactions and the crystal field anisotropy, give rise to competing ordered phases. We show that the antiferromagnetically coupled Dy moments in the $ab$-plane form an incommensurate helimagnetic order with $q\sim(0, 0, 0.43)$ just below $T_{\text{N}}=10$ K, which further exhibits successive first-order transitions to the commensurate helimagnetic order with $q=(0,0,0.5)$ at $T_{\text{N}}^{\;\prime}=9.0$ K, and to the canted antiferromagnetic order with $q=(0,0,0)$ at $T_{\text{N}}^{\;\prime\prime}=8.5$ K, both with large coexistence regions. The relation of the magnetic helicity and the crystal chirality in DyNi$_3$Ga$_{9}$ is also uniquely determined. Splitting of the $(6,0,0)$ Bragg peak is observed below $T_{\text{N}}^{\;\prime\prime}$, reflecting the lattice distortion due to the ferroquadrupole order. In the canted antiferromagnetic phase, a spin-flop transition takes place at 5 K when the temperature is swept in a weak magnetic field. We discuss these transitions from the viewpoint of competing energies described above.