Wang Hui-Sheng, Zhou Peng-Fei, Wang Jia, Long Qiao-Qiao, Hu Zhaobo, Chen Yong, Li Jing, Song You, Zhang Yi-Quan
School of Chemistry and Environmental Engineering, Wuhan Institute of Technology, Key Laboratory of Novel Reactor and Green Chemical Technology of Hubei Province, Key Laboratory for Green Chemical Process of Ministry of Education, Wuhan 430074, People's Republic of China.
State Key Laboratory of Coordinate Chemistry, Nanjing National Laboratory of Microstructures, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, People's Republic of China.
Inorg Chem. 2021 Dec 20;60(24):18739-18752. doi: 10.1021/acs.inorgchem.1c02169. Epub 2021 Dec 6.
In this work, we employed an asymmetric auxiliary organic ligand (1,1,1-trifluoroacetylacetone, Htfac) to further regulate the magnetic relaxation behavior of series of Dy single-molecule magnets (SMMs) with a 1,3-bis(3-methoxysalicylidene)diethylenetriamine (HL) ligand. Fortunately, an air-stable Dy complex, [Dy(L)(tfac)] (; Htfac = 1,1,1-trifluoroacetylacetone) was obtained at room temperature. A structural analysis indicated that some Dy-O or Dy-N bond lengths for are not in the range of those for the complexes [Dy(L)(acac)]·2CHCl (; Hacac = acetylacetone) and [Dy(L)(hfac)] (; Hhfac = hexafluoroacetylacetone), although the electron-withdrawing ability of tfac is stronger than that of acac but weaker than that of hfac. Additionally, the Dy-O3/O3a (the two O atoms bridged to Dy ions) bond lengths are also affected by the asymmetrical Htfc ligand. This indicated that the charge distribution of the coordination atoms around Dy has been modified in , which leads to the fine-tuning of the magnetic relaxation behavior of . Magnetic studies indicated that the values of effective energy barrier () for and its diluted sample () are 234.8(3) and 188.0(6) K, respectively, which are both higher than the reported value of 110 K for the complex . More interestingly, exhibits a magnetic hysteresis opening when < 2.5 K at zero field, while the hysteresis loops of are closed at a zero dc field. This discrepancy is due to the weak intramolecular exchange coupling in , which cannot overcome the QTM of the single Dy ion. calculations for revealed that the charge distributions of the coordination atoms around Dy ions were regulated and the intramolecular exchange coupling was indeed improved when the asymmetrical Htfc was employed as a ligand for the synthesis of this kind of Dy SMM.
在本工作中,我们使用了一种不对称辅助有机配体(1,1,1 - 三氟乙酰丙酮,Htfac)来进一步调控一系列具有1,3 - 双(3 - 甲氧基水杨醛)二乙三胺(HL)配体的Dy单分子磁体(SMMs)的磁弛豫行为。幸运的是,在室温下获得了一种空气稳定的Dy配合物[Dy(L)(tfac)](;Htfac = 1,1,1 - 三氟乙酰丙酮)。结构分析表明,尽管tfac的吸电子能力比acac强但比hfac弱,但[Dy(L)(tfac)]中一些Dy - O或Dy - N键长不在配合物[Dy(L)(acac)]·2CHCl(;Hacac = 乙酰丙酮)和[Dy(L)(hfac)](;Hhfac = 六氟乙酰丙酮)的键长范围内。此外,Dy - O3/O3a(桥连到Dy离子的两个O原子)键长也受到不对称Htfc配体的影响。这表明[Dy(L)(tfac)]中Dy周围配位原子的电荷分布已被改变,这导致了[Dy(L)(tfac)]磁弛豫行为的微调。磁性研究表明,[Dy(L)(tfac)]及其稀释样品()的有效能垒()值分别为234.8(3) K和188.0(6) K,两者均高于报道的该配合物110 K的值。更有趣的是,当在零场下< 2.5 K时,[Dy(L)(tfac)]呈现出磁滞开口,而在零直流场下的磁滞回线是闭合的。这种差异是由于[Dy(L)(tfac)]中分子内交换耦合较弱,无法克服单个Dy离子的量子隧穿磁矩(QTM)。对[Dy(L)(tfac)]的计算表明,当使用不对称Htfc作为配体来合成这种Dy SMM时,Dy离子周围配位原子的电荷分布得到了调控,并且分子内交换耦合确实得到了改善。