TY - JOUR
T1 - Remote substituents effect on the valence and magnetic behavior in mononuclear cobalt complexes
AU - Luo, Tong Kai
AU - Luo, Qian Cheng
AU - Cao, Chen
AU - Hu, Zhao Bo
AU - Zhong, Xiang
AU - Peng, Yan
AU - Niu, Zhi Gang
AU - Zheng, Yan Zhen
AU - Liu, Sui Jun
AU - Wen, He Rui
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/11/5
Y1 - 2025/11/5
N2 - Four Co(Ⅱ/Ⅲ) mononuclear complexes [CoⅢ(H2L1)](NO3)·H2O (1), [CoⅢ(H2L2)](NO3) (2), [CoII(H2L3)] (3), [CoII(H2L4)] (4) (H2L = N,N’-bis(2‑hydroxy-5-methylbenzyl)-1,4-bis(3-iminopropyl)-piperazine, H2L2 = N,N’-bis[(2-hydroxybenzilideneamino)-propyl]-piperazine, H2L3 = N,N’-bis(2‑hydroxy-5-bromobenzyl)-1,4-bis(3-iminopropyl)-piperazine, H2L4 = N,N’-bis(2‑hydroxy-5-nitrobenzyl)-1,4-bis(3-iminopropyl)-piperazine) based on hexadentate Schiff base ligands were synthesized and charactered. Influenced by the electron-donating Me and H groups, the paramagnetic Co(II) ions in 1 and 2 become diamagnetic Co(Ⅲ) ions, forming a six-coordinate octahedral coordination geometry. For complexes 3 and 4, the Co(Ⅱ) ions remain the same because of the electron-withdrawing Br and NO2 groups, forming a trigonal prismatic coordination geometry. Magnetic studies show that 3 is a field-induced SMM and 4 is a zero field SMM, which proves that the remote substituents have an important effect on the oxidation states of cobalt ion and the magnetic properties of the system. Ab initio calculations indicate that complexes 3 and 4 possess similar axial magnetic anisotropy parameters. However, complex 3 represents much stronger rhombicity, which can be ignored in 4. Moreover, the transition magnetic moment within the ground KD of 3 is much higher for 3 compared to 4, suggesting more significant QTM process in 3, which is consistent with no peaks in ac susceptibility measurement under zero dc magnetic field. For complex 4, when the intermolecular antiferromagnetic exchange was considered through the mean-field approximation, the better agreement between calculated and experimental plots were obtained. This result further proves their existing significant magnetic anisotropy and the reliability of these parameters.
AB - Four Co(Ⅱ/Ⅲ) mononuclear complexes [CoⅢ(H2L1)](NO3)·H2O (1), [CoⅢ(H2L2)](NO3) (2), [CoII(H2L3)] (3), [CoII(H2L4)] (4) (H2L = N,N’-bis(2‑hydroxy-5-methylbenzyl)-1,4-bis(3-iminopropyl)-piperazine, H2L2 = N,N’-bis[(2-hydroxybenzilideneamino)-propyl]-piperazine, H2L3 = N,N’-bis(2‑hydroxy-5-bromobenzyl)-1,4-bis(3-iminopropyl)-piperazine, H2L4 = N,N’-bis(2‑hydroxy-5-nitrobenzyl)-1,4-bis(3-iminopropyl)-piperazine) based on hexadentate Schiff base ligands were synthesized and charactered. Influenced by the electron-donating Me and H groups, the paramagnetic Co(II) ions in 1 and 2 become diamagnetic Co(Ⅲ) ions, forming a six-coordinate octahedral coordination geometry. For complexes 3 and 4, the Co(Ⅱ) ions remain the same because of the electron-withdrawing Br and NO2 groups, forming a trigonal prismatic coordination geometry. Magnetic studies show that 3 is a field-induced SMM and 4 is a zero field SMM, which proves that the remote substituents have an important effect on the oxidation states of cobalt ion and the magnetic properties of the system. Ab initio calculations indicate that complexes 3 and 4 possess similar axial magnetic anisotropy parameters. However, complex 3 represents much stronger rhombicity, which can be ignored in 4. Moreover, the transition magnetic moment within the ground KD of 3 is much higher for 3 compared to 4, suggesting more significant QTM process in 3, which is consistent with no peaks in ac susceptibility measurement under zero dc magnetic field. For complex 4, when the intermolecular antiferromagnetic exchange was considered through the mean-field approximation, the better agreement between calculated and experimental plots were obtained. This result further proves their existing significant magnetic anisotropy and the reliability of these parameters.
KW - Effective energy barrier
KW - Hexadentate schiff base ligands
KW - Remote substituents
KW - Single-molecule magnet
UR - https://www.scopus.com/pages/publications/105008444032
U2 - 10.1016/j.molstruc.2025.142997
DO - 10.1016/j.molstruc.2025.142997
M3 - 文章
AN - SCOPUS:105008444032
SN - 0022-2860
VL - 1344
JO - Journal of Molecular Structure
JF - Journal of Molecular Structure
M1 - 142997
ER -