Vignesh Kuduva R, Langley Stuart K, Murray Keith S, Rajaraman Gopalan
IITB-Monash Research Academy, IIT Bombay, Mumbai, 400076 (India).
Chemistry. 2015 Feb 9;21(7):2881-92. doi: 10.1002/chem.201405679. Epub 2014 Dec 18.
Density functional theory (DFT) studies have been undertaken to compute the magnetic exchange and to probe the origin of the magnetic interactions in two hetero- and two homo-valent heptanuclear manganese disc-like clusters, of formula [Mn(II) 4 Mn(IV) 3 (tea)(teaH2 )3 (peolH)4 ] (1), [Mn(II) 4 Mn(III) 3 F3 (tea)(teaH)(teaH2 )2 (piv)4 (Hpiv)(chp)3 ] (2), [Mn(II) 7 (pppd)6 (tea)(OH)3 ] (3) and [Mn(II) 7 (paa)6 (OMe)6 ] (4) (teaH3 =triethanolamine, peolH4 =pentaerythritol, Hpiv=pivalic acid, Hchp=6-chloro-2-hydroxypyridine, pppd=1-phenyl-3-(2-pyridyl) propane-1,3-dione; paaH=N-(2-pyridinyl)acetoacetamide). DFT calculations yield J values, which reproduce the magnetic susceptibility data very well for all four complexes; these studies are also highlighting the likely ageing/stability problems in two of the complexes. It is found that the spin ground states, S, for complexes 1-4 are drastically different, varying from S=29/2 to S=1/2. These values are found to be controlled by the nature of the oxidation state of the metal ions and minor differences present in the structures. Extensive magneto-structural correlations are developed for the seven building unit dimers present in the complexes, with the correlations unlocking the reasons behind the differences in the magnetic properties observed. Independent of the oxidation state of the metal ions, the Mn-O-Mn/Mn-F-Mn angles are found to be the key parameters, which significantly influence the sign as well as the magnitude of the J values. The magneto-structural correlations developed here, have broad applicability and can be utilised to understand the magnetic properties of other Mn clusters.
已开展密度泛函理论(DFT)研究,以计算磁交换并探究两个异价和两个同价七核锰盘状簇合物中磁相互作用的起源,其化学式分别为[Mn(II)₄Mn(IV)₃(tea)(teaH₂)₃(peolH)₄](1)、[Mn(II)₄Mn(III)₃F₃(tea)(teaH)(teaH₂)₂(piv)₄(Hpiv)(chp)₃](2)、[Mn(II)₇(pppd)₆(tea)(OH)₃](3)和[Mn(II)₇(paa)₆(OMe)₆](4)(teaH₃ = 三乙醇胺,peolH₄ = 季戊四醇,Hpiv = 新戊酸,Hchp = 6 - 氯 - 2 - 羟基吡啶,pppd = 1 - 苯基 - 3 -(2 - 吡啶基)丙烷 - 1,3 - 二酮;paaH = N -(2 - 吡啶基)乙酰乙酰胺)。DFT计算得出J值,该值能很好地重现所有四种配合物的磁化率数据;这些研究还突出了其中两种配合物可能存在的老化/稳定性问题。研究发现,配合物1 - 4的自旋基态S差异极大,范围从S = 29/2到S = 1/2。这些值被发现受金属离子氧化态的性质以及结构中存在的微小差异控制。针对配合物中存在的七个结构单元二聚体建立了广泛的磁结构相关性,这些相关性揭示了所观察到的磁性质差异背后的原因。与金属离子的氧化态无关,发现Mn - O - Mn/Mn - F - Mn角是关键参数,其显著影响J值的符号以及大小。此处建立的磁结构相关性具有广泛的适用性,可用于理解其他锰簇合物的磁性质。