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Continuous and discontinuous quantum phase transitions in a model two-dimensional magnet

机译:模型二维磁体中的连续和不连续量子相变

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摘要

The Shasty–Sutherland model, which consists of a set of spin 1/2 dimers on a 2D square lattice, is simple and soluble but captures a central theme of condensed matter physics by sitting precariously on the quantum edge between isolated, gapped excitations and collective, ordered ground states. We compress the model Shastry–Sutherland material, SrCu2(BO3)2, in a diamond anvil cell at cryogenic temperatures to continuously tune the coupling energies and induce changes in state. High-resolution X-ray measurements exploit what emerges as a remarkably strong spin-lattice coupling to both monitor the magnetic behavior and the absence or presence of structural discontinuities. In the low-pressure spin-singlet regime, the onset of magnetism results in an expansion of the lattice with decreasing temperature, which permits a determination of the pressure-dependent energy gap and the almost isotropic spin-lattice coupling energies. The singlet-triplet gap energy is suppressed continuously with increasing pressure, vanishing completely by 2 GPa. This continuous quantum phase transition is followed by a structural distortion at higher pressure.
机译:Shasty–Sutherland模型由2D方格上的一组自旋1/2二聚体组成,结构简单且可溶,但是由于它不稳定地坐在孤立的,带隙的激发和集体之间的量子边缘上,因此捕捉了凝聚态物理的中心主题,有序的基态。我们在低温下在金刚石砧座中压缩模型的Shastry-Sutherland材料SrCu2(BO3)2,以连续调节耦合能并引起状态变化。高分辨率X射线测量利用显着强大的自旋-晶格耦合来监视磁行为以及结构不连续性的存在与否。在低压自旋-单态状态下,磁性的出现导致晶格随着温度降低而膨胀,从而可以确定与压力有关的能隙和几乎各向同性的自旋-晶格耦合能。单重态-三重态的间隙能量随着压力的增加而被连续抑制,完全消失了2 GPa。这种连续的量子相变之后是较高压力下的结构变形。

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