论文标题

集体参数磁铁的磁共振具有宽大的激发光谱

Magnetic resonance of collective paramagnets with gapped excitations spectrum

论文作者

Glazkov, V. N.

论文摘要

尽管存在明显的交换耦合,但由于特定的交换键的特定几何形状而引起的一些磁铁不会经历传统的磁有序状态。取而代之的是,形成了集体的顺磁性状态。如果该磁铁的基态被证明是通过能量差距与激发的三重率状态分离的非磁性单线,则后来的状态可以保持稳定至$ t = 0 $。可以用三胞胎激发的稀释气体来描述具有散发激发光谱(或自旋 - 间隙磁体)的集体参数磁铁的低温自旋动力学。施加的磁场可以抑制能量间隙,从而形成无间隙旋转状态,甚至导致野外诱导的抗磁磁性的异常现象。引入自旋间隙磁体晶体学结构中的缺陷可以导致形成多旋转顺磁心中心,或者在形成晶体中随机分布的修饰交换键中。这篇综述包括电子自旋共振(ESR)光谱研究的结果,这些量子的量子磁铁研究具有散发激发光谱:quasy-two-two-two二维磁铁\ phcc {},“ spin-pube” type \ sul {}和“ spin-ladder” type \ dipy \ dimpy d dimpy d di dimpy dimpy}}的“ spin-pube” type \ sul-spin-tybube磁铁。我们将证明,ESR的吸收光谱揭示了这些系统的共同特征:ESR光谱允许观察和表征精细的结构,如果三胞胎能量水平,以确定三胞胎兴奋气体中的许多粒子放松过程,并观察到集体自旋波振荡在现场诱导的抗fiferromagagnetsitighticallomagagnetsity State State State State State State,并观察到一些系统的系统。

Some magnets due to particular geometry of the exchange bonds do not undergo transition to the conventional magnetically ordered state despite of the presence of significant exchange couplings. Instead, a collective paramagnetic state is formed. The later state can remain stable down to $T=0$ if the ground state of this magnet turns out to be nonmagnetic singlet separated from the excited triplet states by an energy gap. Low-temperature spin dynamics of the collective paramagnets with gapped excitations spectrum (or spin-gap magnets) can be described in terms of a dilute gas of the triplet excitations. Applied magnetic field can suppress the energy gap, resulting in the formation of the gapless spin-liquid state or even leading to the unusual phenomenon of field-induced antiferromagnetic order. Introduction of defects in the crystallographic structure of the spin-gap magnet can result either in the formation of multi-spin paramagnetic center or in the formation of randomly distributed modified exchange bonds in the crystal. This review includes results of electron spin resonance (ESR) spectroscopy study of several representative quantum paramagnets with gapped excitations spectrum: quasy-two-dimensional magnet \phcc{}, quasy-one-dimensional magnets of "spin-tube" type \sul{} and "spin-ladder" type \dimpy{}. We will demonstrate that ESR absorption spectra reveal common features of these systems: ESR spectroscopy allows to observe and characterize fine structure if the triplet energy levels, to identify many-particles relaxation processes in the gas of triplet excitations and to observe collective spin-wave oscillations in the field induced antiferromagnetically ordered state, as well as to observe some individual features of the studied systems.

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