The EPR Zero-Field Splitting D and its Pressure and Temperature Dependence for Trigonal Mn2+ Centers in [Zn(H2O)6](BF4)2:Mn2+ Crystal
Hong-Gang Liu, Xianxin Wu, Wen‐Chen Zheng, He Lv
Abstract
Hong-Gang Liu, Xianxin Wu, Wen‐Chen Zheng, He Lv
Abstract
The EPR zero-field splitting D (= b0 2 ) and its pressure and temperature dependence for trigonal Mn2+ centers in low and room temperature phases in [Zn(H2O)6](BF4)2 :Mn2+ crystal are studied by a high-order perturbation formula based on the dominant spin-orbit coupling mechanism. From the studies, the local trigonal distortion angles, the local angular compressibilities and the local angular thermal expansion coefficients for Mn2+ centers in both phases of the [Zn(H2O)6](BF4)2 crystal are estimated. The results are discussed
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The EPR zero-field splitting D (= b0 2 ) and its pressure and temperature dependence for trigonal Mn2+ centers in low and room temperature phases in [Zn(H2O)6](BF4)2 :Mn2+ crystal are studied by a high-order perturbation formula based on the dominant spin-orbit coupling mechanism. From the studies, the local trigonal distortion angles, the local angular compressibilities and the local angular thermal expansion coefficients for Mn2+ centers in both phases of the [Zn(H2O)6](BF4)2 crystal are estimated. The results are discussed
Key concepts: Electron paramagnetic resonance, Trigonal crystal system, Zero field splitting, Chemistry, Crystal (programming language), Perturbation (astronomy), Crystallography, Distortion (music)