论文标题
分层结构中磁场诱导的订购的演变量子量子Heisenberg三角形抗Fiferromagnet ba $ _3 $ cosb $ _2 $ o $ $ _9 $
Evolution of magnetic-field-induced ordering in the layered structure quantum Heisenberg triangular-lattice antiferromagnet Ba$_3$CoSb$_2$O$_9$
论文作者
论文摘要
Quantum fluctuations in the effective spin one-half layered structure triangular-lattice quantum Heisenberg antiferromagnet Ba$_3$CoSb$_2$O$_9$ lift the classical degeneracy of the antiferromagnetic ground state in magnetic field, producing a series of novel spin structures for magnetic fields applied within the crystallographic ab plane.然而,理论上未解决的是层间反磁耦合和横向磁场对该系统基态的影响。为了解决这些问题,我们使用了特定的热量,中子衍射,热导率和磁性扭矩测量,以将相图映射为相对于晶体学AB平面的磁场强度和方向的函数。对于平行于AB平面的H,我们发现了在低温下在高场图中的额外的,以前未报告的磁场诱导的相变和一个意外的四耐力点,该相位图与相变的明显二阶性质相结合 - 消除了高场相的几种理论上提出的几种旋转结构。我们的量热测量与磁场方向的函数一般与平行平面平行的场定向角度的理论一般吻合,但在垂直于平面附近的角度上有差异。未在实验中观察到两个相边界在有限角度的预测收敛和场诱导的相变的相应变化。我们的结果强调了层间耦合在选择和稳定场诱导的相中的作用,为每个阶段的磁顺序性质提供了新的指导,并揭示了新物理学需要说明此原型2D旋转2D旋转三角形三角形三角形质量量子Heisenberg antimenberg antifermagnet中磁性的性质。
Quantum fluctuations in the effective spin one-half layered structure triangular-lattice quantum Heisenberg antiferromagnet Ba$_3$CoSb$_2$O$_9$ lift the classical degeneracy of the antiferromagnetic ground state in magnetic field, producing a series of novel spin structures for magnetic fields applied within the crystallographic ab plane. Theoretically unresolved, however, are the effects of interlayer antferromagnetic coupling and transverse magnetic fields on the ground states of this system. To address these issues, we have used specific heat, neutron diffraction, thermal conductivity, and magnetic torque measurements to map out the phase diagram as a function of magnetic field intensity and orientation relative to the crystallographic ab plane. For H parallel to the ab plane, we have discovered an additional, previously unreported magnetic-field-induced phase transition at low temperature and an unexpected tetracritical point in the high field phase diagram, which - coupled with the apparent second-order nature of the phase transitions - eliminates several theoretically proposed spin structures for the high field phases. Our calorimetric measurements as a function of magnetic field orientation are in general agreement with theory for field-orientation angles close to plane parallel but diverge at angles near plane perpendicular; a predicted convergence of two phase boundaries at finite angle and a corresponding change in the order of the field induced phase transition is not observed experimentally. Our results emphasize the role of interlayer coupling in selecting and stabilizing field-induced phases, provide new guidance into the nature of the magnetic order in each phase, and reveal the need for new physics to account for the nature of magnetic ordering in this archetypal 2D spin one-half triangular lattice quantum Heisenberg antiferromagnet.