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Infrared spectroscopic study of CuO: Signatures of strong spin-phonon interaction and structural distortion

2000/01/22 by Alexey B. Kuzmenko, A. B. Kuz'menko, D. van der Marel +6 · 1 citation
Chemistry · Materials Science · Physics and Astronomy · #Anisotropy #Chemistry #Condensed matter physics #Copper-based nanomaterials and applications #Crystal (programming language) #Crystal structure #Crystallography #Monoclinic crystal system #Optics #Phonon #Physics #Physics of Superconductivity and Magnetism #Quantum mechanics #Spectral line #Superlattice #ZnO doping and properties #cond-mat.str-el

paper · pdf · doi:10.1103/physrevb.63.094303

published as Phys.Rev.B 63, 094303 (2001) · 23 pages, 14 figures, REVTeX, submitted to PRB

arxiv created 2000/01/22 · openalex publication_date 2001/02/02 · arxiv updated 2009/11/30 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/05

Abstract

Optical properties of single-crystal monoclinic CuO in the range 70--6000 cm^\ensuremath-1 were studied at temperatures from 7 to 300 K. Normal reflection spectra were obtained from the (001) and (010) crystal faces thus giving separate data for the Au and Bu phonon modes excited in the purely transverse way (TO modes). Mode parameters, including polarizations of the Bu modes not determined by the crystal symmetry, were extracted by the dispersion analysis of reflectivity curves as a function of temperature. Spectra of all the components of the optical conductivity tensor were obtained using the Kramers-Kronig method recently extended to the case of the low-symmetry crystals. The number of strong phonon modes is in agreement with the factor-group analysis for the crystal structure currently accepted for the CuO. However, several ``extra'' modes of minor intensity are detected; some of them are observed in the whole studied temperature range, while existence of others becomes evident at low temperatures. Comparison of frequencies of ``extra'' modes with the available phonon dispersion curves points to possible ``diagonal'' doubling of the unit cell a,b,c\stackrel\ensuremath→a+c,b,a\ensuremath-c and formation of the superlattice. The previously reported softening of the Au3 mode (\ensuremath∼400 cm^\ensuremath-1) with cooling at TN is found to be \ensuremath∼10% for the TO mode. The mode is very broad at high temperatures and strongly narrows in the antiferromagnetic phase. We attribute this effect to strong resonance coupling of this mode to optical or acoustic bimagnons and reconstruction of the magnetic excitations spectrum at the N'eel point. A significant anisotropy of \ensuremathε^\ensuremath∞ is observed: it was found to be 5.9 along the b axis, 6.2 along the [101] chains, and 7.8 along the [101\ifmmode\else\textasciimacron\fi] chains. The transverse effective charge eT* is more or less isotropic; its value is about two electrons.

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