Brockman Jonathan T, Stamatatos Theocharis C, Wernsdorfer Wolfgang, Abboud Khalil A, Christou George
Department of Chemistry, University of Florida, Gainesville, FL 32611-7200, USA.
Inorg Chem. 2007 Oct 29;46(22):9160-71. doi: 10.1021/ic7011292. Epub 2007 Oct 2.
The reactions of [Mn12O12(O2CEt)16(H2O)4] with phenylphosphinic acid (PhHPO2H) in MeCN and MeCN/CH2Cl2 have led to isolation of [Mn22O12(O2CEt)22(O3PPh)8(H2O)8] (2) and [Mn22O12(O2CEt)20(O3PPh)8(O2PPhH)2(H2O)8]n (3), respectively, both containing PhPO3(2-) groups from in situ oxidation of PhHPO(2)(-). Complex 2 is molecular and consists of two Mn9 subunits linked by four additional Mn atoms. Complex 3 contains almost identical Mn22 units as 2, but they are linked into a one-dimensional chain structure. The Mn22 unit in both compounds is mixed-valence Mn(III)18, Mn(II)4. Solid-state, variable-temperature dc magnetic susceptibility and magnetization measurements were performed on vacuum-dried samples of 2 and 3, indicating dominant antiferromagnetic interactions. A good fit of low-temperature magnetization data for 2 could not be obtained because of problems associated with low-lying excited states, as expected for a high nuclearity complex containing Mn(II) atoms. An approximate fit using only data collected in small applied fields indicated an S = 7 or 8 ground state for 2. Solid-state ac susceptibility data established that the true ground state of 2 is S = 7 and that the connected Mn22 units of 3 are ferromagnetically coupled. Both 2 and 3 displayed weak out-of-phase ac signals indicative of slow magnetization relaxation. Single-crystal magnetization versus applied dc field scans exhibited hysteresis loops for both compounds, establishing them as new single-molecule and single-chain magnets, respectively. Complex 2 also showed steps in its hysteresis loops characteristic of quantum tunneling of magnetization, the highest nuclearity molecule to show such QTM steps. Arrhenius plots constructed from dc magnetization versus time decay plots gave effective barriers to magnetization relaxation (U(eff)) of 6 and 11 cm(-1) for 2 and 3, respectively.
[Mn12O12(O2CEt)16(H2O)4]与苯次膦酸(PhHPO2H)在乙腈和乙腈/二氯甲烷中的反应分别得到了[Mn22O12(O2CEt)22(O3PPh)8(H2O)8] (2)和[Mn22O12(O2CEt)20(O3PPh)8(O2PPhH)2(H2O)8]n (3),二者均含有由PhHPO(2)(-)原位氧化生成的PhPO3(2-)基团。配合物2是分子型的,由两个通过另外四个锰原子相连的Mn9亚基组成。配合物3含有与2几乎相同的Mn22单元,但它们连接成一维链状结构。两种化合物中的Mn22单元均为混合价态的Mn(III)18、Mn(II)4。对2和3的真空干燥样品进行了固态变温直流磁化率和磁化强度测量,结果表明存在主要的反铁磁相互作用。由于存在与低激发态相关的问题,无法对2的低温磁化强度数据进行良好拟合,这对于含有Mn(II)原子的高核配合物来说是预期的。仅使用在小外加磁场中收集的数据进行的近似拟合表明2的基态为S = 7或8。固态交流磁化率数据表明2的真实基态为S = 7,且3中相连的Mn22单元是铁磁耦合的。2和3均显示出微弱的异相交流信号,表明磁化弛豫缓慢。单晶磁化强度与外加直流磁场扫描对两种化合物均显示出磁滞回线,分别将它们确定为新型单分子磁体和单链磁体。配合物2在其磁滞回线中还显示出磁化强度量子隧穿的特征台阶,是显示此类QTM台阶的最高核分子。由直流磁化强度与时间衰减曲线构建的阿仑尼乌斯图给出了2和3的磁化弛豫有效势垒(U(eff))分别为6和11 cm(-1)。