论文标题
中子光谱证据证明了可能磁场诱导的无间隙量子旋转阶段,在吉塔维材料$α$ -rucl $ _3 $中
Neutron spectroscopy evidence for a possible magnetic-field-induced gapless quantum-spin-liquid phase in a Kitaev material $α$-RuCl$_3$
论文作者
论文摘要
作为最有前途的Kitaev量子旋转液体(QSL)候选者之一,$α$ -RUCL $ _3 $受到了很大的关注。然而,其基态表现出远距离的曲折磁序,它违反了QSL相。然而,磁顺序是脆弱的,可以通过施加外部磁场来完全抑制。在这里,我们通过对高质量的单晶进行无弹性中子散射测量测量,探索$α$ -RUCL $ _3 $的磁激发的演变。在零字段下,在$ m $点附近存在自旋波激发和$ \mitγ$点附近的连续体,据信它们分别与基塔夫QSL状态的锯齿形磁顺序和分数激发有关。通过增加磁场,自旋波激发逐渐让位于连续的激发。在关键场的边缘$μ_0H_ {\ rm c} = 7.5 $ t,以前消失了,只剩下后者,表明纯QSL状态的出现。通过进一步提高野外强度,$ \mitγ$点附近的激发变得更加强烈。通过遵循$ \MITγ$点附近激发的间隙演变,我们能够建立一个相图,由三个有趣的相位组成,包括在低场处的张开的Zigzag订单阶段,可能是$μ_0H_ {\ rm c} $接近$μ_0H_ {\ rm c} $,以及在高田中的部分极化相位。这些结果表明,平面磁场可以将$α$ -rucl $ _3 $驱动到临界场附近的长期QSL状态。
As one of the most promising Kitaev quantum-spin-liquid (QSL) candidates, $α$-RuCl$_3$ has received a great amount of attention. However, its ground state exhibits a long-range zigzag magnetic order, which defies the QSL phase. Nevertheless, the magnetic order is fragile and can be completely suppressed by applying an external magnetic field. Here, we explore the evolution of magnetic excitations of $α$-RuCl$_3$ under an in-plane magnetic field, by carrying out inelastic neutron scattering measurements on high-quality single crystals. Under zero field, there exist spin-wave excitations near the $M$ point and a continuum near the $\mitΓ$ point, which are believed to be associated with the zigzag magnetic order and fractional excitations of the Kitaev QSL state, respectively. By increasing the magnetic field, the spin-wave excitations gradually give way to the continuous excitations. On the verge of the critical field $μ_0H_{\rm c}=7.5$ T, the former vanish and only the latter is left, indicating the emergence of a pure QSL state. By further increasing the field strength, the excitations near the $\mitΓ$ point become more intense. By following the gap evolution of the excitations near the $\mitΓ$ point, we are able to establish a phase diagram composed of three interesting phases, including a gapped zigzag order phase at low fields, possibly-gapless QSL phase near $μ_0H_{\rm c}$, and gapped partially polarized phase at high fields. These results demonstrate that an in-plane magnetic field can drive $α$-RuCl$_3$ into a long-sought QSL state near the critical field.