论文标题
CE3PD20SI6中磁场驱动的量子相变的级联
Cascade of magnetic-field-driven quantum phase transitions in Ce3Pd20Si6
论文作者
论文摘要
磁性隐藏的秩序是电子排序现象的高表,可见宏观热力学探针可见,但其显微镜对称性无法用常规的中子或X射线衍射。在少数f-电子系统中,奇数级多底数的排序导致具有消失的中子横截面的顺序参数。其中,CE $ _3 $ pd $ _ {20} $ si $ _6 $以其独特的相图而闻名,它们显示了两个不同的多极订购的接地状态(阶段II和II'),该量子与乘有序的Quadrupall Mistal在$ o_2^0 $ o_2^0 $ o_2^0 $ o_2 $ o_____} $ o_2^0 $ o____} $ _} $ _} $ _ {x y}相关的现场驱动量子相变过。在Subkelvin温度下,使用扭矩磁力测定法,在这里,我们在12吨以上的较高场上找到了另一个相变,仅用于低对称磁场方向$ \ MATHBF {B} \ Parallel \ Langle11l \ langle11l \ rangle \ rangle $,带有$ 1 <l \ l \ leq 2 $。虽然该新阶段II'的顺序参数''仍然未知,但该发现使CE $ _3 $ pd $ _ {20} $ si $ _6 $一种独特的材料,具有两个野外驱动的相位过渡之间不同的多极相之间的过渡。它们都清楚地表现在磁场诱导的(111)Bragg强度的磁场依赖性中,该强度用$ \ Mathbf {B} \ Parallel [112] $的中子散射测量。我们还从非弹性中子散射中发现,磁场引起的非排定集体激发数与磁相图在同一磁场方向上的相数相关。此外,磁激发光谱表明,新阶段II'可能具有不同的传播矢量,这是由分散体中的最小值揭示的,可能代表了该隐藏阶相的巨石模式。
Magnetically hidden order is a hypernym for electronic ordering phenomena that are visible to macroscopic thermodynamic probes but whose microscopic symmetry cannot be revealed with conventional neutron or x-ray diffraction. In a handful of f-electron systems, the ordering of odd-rank multipoles leads to order parameters with a vanishing neutron cross-section. Among them, Ce$_3$Pd$_{20}$Si$_6$ is known for its unique phase diagram exhibiting two distinct multipolar-ordered ground states (phases II and II'), separated by a field-driven quantum phase transition associated with a putative change in the ordered quadrupolar moment from $O_2^0$ to $O_{xy}$. Using torque magnetometry at subkelvin temperatures, here we find another phase transition at higher fields above 12 T, which appears only for low-symmetry magnetic field directions $\mathbf{B} \parallel \langle11L\rangle$ with $1 < L \leq 2$. While the order parameter of this new phase II'' remains unknown, the discovery renders Ce$_3$Pd$_{20}$Si$_6$ a unique material with two field-driven phase transitions between distinct multipolar phases. They are both clearly manifested in the magnetic-field dependence of the field-induced (111) Bragg intensities measured with neutron scattering for $\mathbf{B} \parallel [112]$. We also find from inelastic neutron scattering that the number of nondegenerate collective excitations induced by the magnetic field correlates with the number of phases in the magnetic phase diagram for the same field direction. Furthermore, the magnetic excitation spectrum suggests that the new phase II'' may have a different propagation vector, revealed by the minimum in the dispersion that may represent the Goldstone mode of this hidden-order phase.