论文标题
磁场引起的自旋汉密尔顿人的可调性:yb $ _2 $ ti $ _2 $ o $ _7 $
Magnetic-field-induced tunability of spin Hamiltonians: Resonances and Efimov states in Yb$_2$Ti$_2$O$_7$
论文作者
论文摘要
普遍性是一个有力的概念,它是由特征长度尺度的分歧产生的。对于冷凝物质系统,该长度尺度通常是相关长度,在分隔两个不同阶段的临界点处有分歧。当$ s $波散射长度分歧时,很少有粒子系统表现出更简单的通用形式。普遍现象的一个突出例子是,三体结合状态的无限塔的出现遵守离散量表不变性,称为Efimov效应,该效应已受到化学,原子,核和粒子物理学的广泛研究。原则上,这些普遍现象也可以在凝结物质系统的激发光谱中出现,例如量子磁铁〜[y。 Nishida,Y。Kato和C. Batista,Nat。物理。 9,93(2013)]。但是,相对于动能的有效粒子相互作用的可调性有限,到目前为止无法观察到它们。 Here we demonstrate that a high degree of magnetic-field-induced tunability can also be achieved in quantum magnets with strong spin-orbit coupling: a two-magnon resonance condition can be achieved in Yb$_2$Ti$_2$O$_7$ with a field of $\sim$ 13~T along the [110] direction, which leads to the formation of Efimov states in the three-magnon spectrum of this 材料。拉曼散射实验可以揭示现场诱导的两麦克农共振,以及在谐振条件附近出现的Efimov三麦克农结合状态。
Universality is a powerful concept that arises from the divergence of a characteristic length scale. For condensed matter systems, this length scale is typically the correlation length, which diverges at critical points separating two different phases. Few-particle systems exhibit a simpler form of universality when the $s$-wave scattering length diverges. A prominent example of universal phenomena is the emergence of an infinite tower of three-body bound states obeying discrete scale invariance, known as the Efimov effect, which has been subject to extensive research in chemical, atomic, nuclear and particle physics. In principle, these universal phenomena can also emerge in the excitation spectrum of condensed matter systems, such as quantum magnets~[Y. Nishida, Y. Kato, and C. Batista, Nat. Phys. 9, 93 (2013)]. However, the limited tunability of the effective inter-particle interaction relative to the kinetic energy has precluded so far their observation. Here we demonstrate that a high degree of magnetic-field-induced tunability can also be achieved in quantum magnets with strong spin-orbit coupling: a two-magnon resonance condition can be achieved in Yb$_2$Ti$_2$O$_7$ with a field of $\sim$ 13~T along the [110] direction, which leads to the formation of Efimov states in the three-magnon spectrum of this material. Raman scattering experiments can reveal the field-induced two-magnon resonance, as well as the Efimov three-magnon bound states that emerge near the resonance condition.