论文标题

两种类型的交替自旋 - $ \ frac12 $链及其野外引起的过渡,$ \ varepsilon $ -livopo $ _4 $

Two types of alternating spin-$\frac12$ chains and their field-induced transitions in $\varepsilon$-LiVOPO$_4$

论文作者

Mukharjee, Prashanta K., Ranjith, K. M., Baenitz, M., Skourski, Y., Tsirlin, A. A., Nath, R.

论文摘要

报告了热力学特性,$^{31} $ p核磁共振(NMR)测量值以及$ \ varepsilon $ -livopo $ _4 $的密度功能型带结构计算。该量子磁铁具有单线基态,并包括两种交替的自旋 - $ \ frac12 $链,它们在易感性和磁性特定热量中由双重最大值表现出来,以及带有InterMediate $ \ frac12 $ plateau的两步磁化过程。 From thermodynamic data and band-structure calculations, we estimate the leading couplings of $J_1\simeq 20$ K and $J_2\simeq 60$ K and the alternation ratios of $α_1=J_1'/J_1\simeq 0.6$ and $α_2=J_2'/J_2\simeq 0.3$ within the two chains, respectively.零场自旋间隙$δ_0/k _ {\ rm b} \ simeq 7.3 $ k由热力学和NMR测量探测为$ j_1 $ - $ j_1 $ - $ j_1'$ spin链,可以在$μ__{0} h $ rm c的应用领域中封闭,并在$μ_{0} h____- rm c1}中关闭。远程顺序。 NMR数据揭示了低温下主要的三维自旋旋转相关性。在$ h_ {c1} $上观察到的现场诱导的磁顺序转换归因于由$ j_1 $ -j_1 $ -j_1'$链与较弱的交换耦合形成的sublattice中的bose-einstein凝结。

Thermodynamic properties, $^{31}$P nuclear magnetic resonance (NMR) measurements, and density-functional band-structure calculations for $\varepsilon$-LiVOPO$_4$ are reported. This quantum magnet features a singlet ground state and comprises two types of alternating spin-$\frac12$ chains that manifest themselves by the double maxima in the susceptibility and magnetic specific heat, and by the two-step magnetization process with an intermediate $\frac12$-plateau. From thermodynamic data and band-structure calculations, we estimate the leading couplings of $J_1\simeq 20$ K and $J_2\simeq 60$ K and the alternation ratios of $α_1=J_1'/J_1\simeq 0.6$ and $α_2=J_2'/J_2\simeq 0.3$ within the two chains, respectively. The zero-field spin gap $Δ_0/k_{\rm B}\simeq 7.3$ K probed by thermodynamic and NMR measurements is caused by the $J_1$-$J_1'$ spin chains and can be closed in the applied field of $μ_{0}H_{\rm c1}\simeq 5.6$ T, giving rise to a field-induced long-range order. The NMR data reveal predominant three-dimensional spin-spin correlations at low temperatures. Field-induced magnetic ordering transition observed above $H_{c1}$ is attributed to the Bose-Einstein condensation of triplons in the sublattice formed by the $J_1$-$J_1'$ chains with weaker exchange couplings.

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