Spin quenching assisted by a strongly anisotropic compression behavior in MnP

We studied the crystal structure and spin state of MnP under high pressure with synchrotron x-ray diffraction and x-ray emission spectroscopy (XES). MnP has an exceedingly strong anisotropy in compressibility, with the primary compressible direction along the b axis of the Pnma structure. XES reveal...

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Veröffentlicht in:New journal of physics 2018-02, Vol.20 (2), p.23012
Hauptverfasser: Han, Fei, Wang, Di, Wang, Yonggang, Li, Nana, Bao, Jin-Ke, Li, Bing, Botana, Antia S, Xiao, Yuming, Chow, Paul, Chung, Duck Young, Chen, Jiuhua, Wan, Xiangang, Kanatzidis, Mercouri G, Yang, Wenge, Mao, Ho-Kwang
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Sprache:eng
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Zusammenfassung:We studied the crystal structure and spin state of MnP under high pressure with synchrotron x-ray diffraction and x-ray emission spectroscopy (XES). MnP has an exceedingly strong anisotropy in compressibility, with the primary compressible direction along the b axis of the Pnma structure. XES reveals a pressure-driven quenching of the spin state in MnP. First-principles calculations suggest that the strongly anisotropic compression behavior significantly enhances the dispersion of the Mn d-orbitals and the splitting of the d-orbital levels compared to the hypothetical isotropic compression behavior. Thus, we propose spin quenching results mainly from the significant enhancement of the itinerancy of d electrons and partly from spin rearrangement occurring in the split d-orbital levels near the Fermi level. This explains the fast suppression of magnetic ordering in MnP under high pressure. The spin quenching lags behind the occurrence of superconductivity at ∼8 GPa implying that spin fluctuations govern the electron pairing for superconductivity.
ISSN:1367-2630
1367-2630
DOI:10.1088/1367-2630/aaa3c3