TY - JOUR
T1 - Tetragonally compressed high-spin Mn(III) Schiff base complex
T2 - Synthesis, crystal structure, magnetic properties and theoretical calculations
AU - Wang, Shi
AU - He, Wen Rui
AU - Ferbinteanu, Marilena
AU - Li, Yong Hua
AU - Huang, Wei
PY - 2013/3/22
Y1 - 2013/3/22
N2 - The synthesis, X-ray crystal structures, magnetic properties and Density Functional Theory (DFT) calculations of a new six-coordinated high-spin (HS) Mn(III) Schiff base complex, [MnIII(3-MeO-sal-N(1,5,9,13))]NO 3 (1), are described. The crystal structure analysis show that the Mn site has a tetragonally compressed octahedral geometry. The magnetic susceptibilities measurements indicate the HS ground state in the temperature range 1.8-300 K, in contrast with a previously reported analogue, [Mn(5-Br-sal-N-1,5,8,12)]ClO4, which showed spin-crossover (SCO) behavior. The magnetic data are well fitted by Zero-Field-Splitting (ZFS) Hamiltonian, showing a D > 0 parameter, in line with the compressed octahedron pattern. Various DFT computations certified, in semi-quantitative respects, the fitted Spin Hamiltonian parameters. Computational experiments using fractional population schemes or Time-Dependent DFT approach yielded the specific ligand field parameters, contributing to the theoretical insight in the rare case of compressed Mn(III) complexes.
AB - The synthesis, X-ray crystal structures, magnetic properties and Density Functional Theory (DFT) calculations of a new six-coordinated high-spin (HS) Mn(III) Schiff base complex, [MnIII(3-MeO-sal-N(1,5,9,13))]NO 3 (1), are described. The crystal structure analysis show that the Mn site has a tetragonally compressed octahedral geometry. The magnetic susceptibilities measurements indicate the HS ground state in the temperature range 1.8-300 K, in contrast with a previously reported analogue, [Mn(5-Br-sal-N-1,5,8,12)]ClO4, which showed spin-crossover (SCO) behavior. The magnetic data are well fitted by Zero-Field-Splitting (ZFS) Hamiltonian, showing a D > 0 parameter, in line with the compressed octahedron pattern. Various DFT computations certified, in semi-quantitative respects, the fitted Spin Hamiltonian parameters. Computational experiments using fractional population schemes or Time-Dependent DFT approach yielded the specific ligand field parameters, contributing to the theoretical insight in the rare case of compressed Mn(III) complexes.
KW - Axial compression
KW - DFT calculations
KW - Ligand field parameters
KW - Magnetic anisotropy
KW - Mn(III) complex
UR - http://www.scopus.com/inward/record.url?scp=84875425222&partnerID=8YFLogxK
U2 - 10.1016/j.poly.2012.06.042
DO - 10.1016/j.poly.2012.06.042
M3 - 文章
AN - SCOPUS:84875425222
SN - 0277-5387
VL - 52
SP - 1199
EP - 1205
JO - Polyhedron
JF - Polyhedron
ER -