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在耦合自旋梯子反铁磁体CHNCuBr中压力诱导非常规量子临界性的证据。

Evidence for pressure induced unconventional quantum criticality in the coupled spin ladder antiferromagnet CHNCuBr.

作者信息

Hong Tao, Ying Tao, Huang Qing, Dissanayake Sachith E, Qiu Yiming, Turnbull Mark M, Podlesnyak Andrey A, Wu Yan, Cao Huibo, Liu Yaohua, Umehara Izuru, Gouchi Jun, Uwatoko Yoshiya, Matsuda Masaaki, Tennant David A, Chern Gia-Wei, Schmidt Kai P, Wessel Stefan

机构信息

Neutron Scattering Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.

School of Physics, Harbin Institute of Technology, 150001, Harbin, China.

出版信息

Nat Commun. 2022 Jun 2;13(1):3073. doi: 10.1038/s41467-022-30769-8.

Abstract

Quantum phase transitions in quantum matter occur at zero temperature between distinct ground states by tuning a nonthermal control parameter. Often, they can be accurately described within the Landau theory of phase transitions, similarly to conventional thermal phase transitions. However, this picture can break down under certain circumstances. Here, we present a comprehensive study of the effect of hydrostatic pressure on the magnetic structure and spin dynamics of the spin-1/2 ladder compound CHNCuBr. Single-crystal heat capacity and neutron diffraction measurements reveal that the Néel-ordered phase breaks down beyond a critical pressure of P ∼ 1.0 GPa through a continuous quantum phase transition. Estimates of the critical exponents suggest that this transition may fall outside the traditional Landau paradigm. The inelastic neutron scattering spectra at 1.3 GPa are characterized by two well-separated gapped modes, including one continuum-like and another resolution-limited excitation in distinct scattering channels, which further indicates an exotic quantum-disordered phase above P.

摘要

量子物质中的量子相变是通过调节一个非热控制参数,在零温度下于不同基态之间发生的。通常,与传统热相变类似,它们可以在朗道相变理论框架内得到准确描述。然而,这种情况在某些情形下可能会失效。在此,我们对静水压力对自旋 - 1/2 梯形化合物 CHNCuBr 的磁结构和自旋动力学的影响进行了全面研究。单晶热容量和中子衍射测量表明,奈尔有序相在约 1.0 GPa 的临界压力以上通过连续量子相变而瓦解。临界指数的估计表明,该相变可能不属于传统的朗道范式。1.3 GPa 下的非弹性中子散射谱的特征是有两个明显分开的带隙模式,包括一个在不同散射通道中的类连续模式和另一个受分辨率限制的激发模式,这进一步表明在该压力以上存在一个奇异的量子无序相。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e4e/9163114/96a3017861d9/41467_2022_30769_Fig1_HTML.jpg

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