论文标题
空间各向异性三角晶格量子磁铁cu $ _2 $ _2 $(oh)$ _ 3 $ _ 3 $ _ 3 $ _ 3 $ _3 $
Possible coexistence of short-range resonating-valence-bond and long-range stripe correlations in the spatially anisotropic triangular-lattice quantum magnet Cu$_2$(OH)$_3$NO$_3$
论文作者
论文摘要
我们表明,短距离谐音 - 价值相关性和远程顺序可以在沮丧的旋转系统的基态(GS)共存。我们的研究包括对Cu $ _2 $(oh)$ _3 $ _ 3 $ no $ _3 $的量子磁性的全面研究,该cu $ _2 $(oh)$ _ 3 $,该$ _3 $ no $ _3 $,它实现了$ = 1/2 Heisenberg型号在空间各向异性的三角形三角形lattice上。通过拟合高达55 t的磁化来确定的竞争交换交互作用产生了异国情调的GS波功能,并共存了主要的短距离谐音谐音键相关性和较弱的远距离条纹订单(订购时刻$ = M_0 $ = $ = $ | | \ langle s_i^z \ langle s_i^z \ rangle $ $ $ $ 0.02)。在低温下,在$ \ sim $ 1-3 t下可见一阶自旋流动过渡。随着应用场的进一步增加,另外两个磁场诱导的量子相变的位置分别为$ \ sim $ 14-19和$ \ sim $ 46-52 t。海森堡交换模型的仿真显示了与这些非常规相的磁场调制的半定量一致性,以及中子衍射中没有可见的磁反射,因此支持Cu $ _2 $ _2 $ _2 $ _2 $ _ 3 $ _ 3 $ _3 $ _3 $的旋转系统的GS可能大约是量子旋转的液体。我们的研究以空间各向异性交换相互作用作为旋转液体的舞台建立了无结构无序的磁性材料。
We show that short-range resonating-valence-bond correlations and long-range order can coexist in the ground state (GS) of a frustrated spin system. Our study comprises a comprehensive investigation of the quantum magnetism on the structurally disorder-free single crystal of Cu$_2$(OH)$_3$NO$_3$, which realizes the $s$ = 1/2 Heisenberg model on a spatially anisotropic triangular lattice. Competing exchange interactions determined by fitting the magnetization measured up to 55 T give rise to an exotic GS wavefunction with coexistence of the dominant short-range resonating-valence-bond correlations and weak long-range stripe order (ordered moment $M_0$ = $|\langle s_i^z\rangle|$ $\sim$ 0.02). At low temperatures, a first-order spin-flop transition is visible at $\sim$ 1-3 T. As the applied field further increases, another two magnetic-field-induced quantum phase transitions are observed at $\sim$ 14-19 and $\sim$ 46-52 T, respectively. Simulations of the Heisenberg exchange model show semi-quantitative agreement with the magnetic-field modulation of these unconventional phases, as well as the absence of visible magnetic reflections in neutron diffraction, thus supporting the GS of the spin system of Cu$_2$(OH)$_3$NO$_3$ may be approximate to a quantum spin liquid. Our study establishes structurally disorder-free magnetic materials with spatially anisotropic exchange interactions as a possible arena for spin liquids.