Nematicity and magnetism in LaFeAsO single crystals probed by As 75 nuclear magnetic resonance

Nematicity and magnetism in LaFeAsO single crystals probed by As 75 nuclear magnetic resonance
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DOI:
10.1103/physrevb.97.180405
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发表时间:
2018-02
期刊:
影响因子:
3.7
通讯作者:
J. Ok;S. H. Baek;D. Efremov;R. Kappenberger;S. Aswartham;Jun Sung Kim;J. V. D. Brink;B. Büchner
J. Ok;S. H. Baek;D. Efremov;R. Kappenberger;S. Aswartham;Jun Sung Kim;J. V. D. Brink;B. Büchner
中科院分区:
物理与天体物理2区
文献类型:
--
作者:
J. Ok;S. H. Baek;D. Efremov;R. Kappenberger;S. Aswartham;Jun Sung Kim;J. V. D. Brink;B. Büchner

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We report a $^{75}\mathrm{As}$ nuclear magnetic resonance study in LaFeAsO single crystals, which undergoes nematic and antiferromagnetic transitions at ${T}_{\text{nem}}\ensuremath{\sim}156$ K and ${T}_{N}\ensuremath{\sim}138$ K, respectively. Below ${T}_{\text{nem}}$, the $^{75}\mathrm{As}$ spectrum splits sharply into two for an external magnetic field parallel to the orthorhombic $a$ or $b$ axis in the FeAs planes. Our analysis of the data demonstrates that the NMR line splitting arises from an electronically driven rotational symmetry breaking. The $^{75}\mathrm{As}$ spin-lattice relaxation rate as a function of temperature shows that spin fluctuations are strongly enhanced just below ${T}_{\text{nem}}$. These NMR findings indicate that nematic order promotes spin fluctuations in magnetically ordered LaFeAsO, as observed in nonmagnetic and superconducting FeSe. We conclude that the origin of nematicity is identical in both FeSe and LaFeAsO regardless of whether or not a long-range magnetic order develops in the nematic state.
We report a $^{75}\mathrm{As}$ nuclear magnetic resonance study in LaFeAsO single crystals, which undergoes nematic and antiferromagnetic transitions at ${T}_{\text{nem}}\ensuremath{\sim}156$ K and ${T}_{N}\ensuremath{\sim}138$ K, respectively. Below ${T}_{\text{nem}}$, the $^{75}\mathrm{As}$ spectrum splits sharply into two for an external magnetic field parallel to the orthorhombic $a$ or $b$ axis in the FeAs planes. Our analysis of the data demonstrates that the NMR line splitting arises from an electronically driven rotational symmetry breaking. The $^{75}\mathrm{As}$ spin-lattice relaxation rate as a function of temperature shows that spin fluctuations are strongly enhanced just below ${T}_{\text{nem}}$. These NMR findings indicate that nematic order promotes spin fluctuations in magnetically ordered LaFeAsO, as observed in nonmagnetic and superconducting FeSe. We conclude that the origin of nematicity is identical in both FeSe and LaFeAsO regardless of whether or not a long-range magnetic order develops in the nematic state.