Department of Chemistry, Northwestern University , Evanston, Illinois 60208-3313, United States.
Department of Chemistry, Massachusetts Institute of Technology , Cambridge, Massachusetts 02139-4307, United States.
J Am Chem Soc. 2017 Mar 22;139(11):4175-4184. doi: 10.1021/jacs.7b00705. Epub 2017 Mar 13.
We report the magnetism and conductivity for a redox pair of iron-quinoid metal-organic frameworks (MOFs). The oxidized compound, (MeNH)[FeL]·2HO·6DMF (LH = 2,5-dichloro-3,6-dihydroxo-1,4-benzoquinone) was previously shown to magnetically order below 80 K in its solvated form, with the ordering temperature decreasing to 26 K upon desolvation. Here, we demonstrate this compound to exhibit electrical conductivity values up to σ = 1.4(7) × 10 S/cm (E = 0.26(1) cm) and 1.0(3) × 10 S/cm (E = 0.19(1) cm) in its solvated and desolvated forms, respectively. Upon soaking in a DMF solution of CpCo, the compound undergoes a single-crystal-to-single-crystal one-electron reduction to give (CpCo)(MeNH)[FeL]·4.9DMF. Structural and spectroscopic analysis confirms this reduction to be ligand-based, and as such the trianionic framework is formulated as [Fe(L)]. Magnetic measurements for this reduced compound reveal the presence of dominant intralayer metal-organic radical coupling to give a magnetically ordered phase below T = 105 K, one of the highest reported ordering temperatures for a MOF. This high ordering temperature is significantly increased relative to the oxidized compound, and stems from the overall increase in coupling strength afforded by an additional organic radical. In line with the high critical temperature, the new MOF exhibits magnetic hysteresis up to 100 K, as revealed by variable-field measurements. Finally, this compound is electrically conductive, with values up to σ = 5.1(3) × 10 S/cm with E = 0.34(1) eV. Taken together, these results demonstrate the unique ability of metal-quinoid MOFs to simultaneously exhibit both high magnetic ordering temperatures and high electrical conductivity.
我们报告了氧化还原对铁-醌金属有机框架(MOF)的磁性和电导率。在其溶剂化形式中,先前已经表明氧化化合物(MeNH)[FeL]·2HO·6DMF(LH=2,5-二氯-3,6-二羟基-1,4-苯醌)在低于 80 K 下磁有序,脱溶剂后有序温度降至 26 K。在这里,我们证明该化合物在溶剂化和脱溶剂化形式下分别表现出高达 σ=1.4(7)×10 S/cm(E=0.26(1)cm)和 1.0(3)×10 S/cm(E=0.19(1)cm)的电导率值。在浸泡于 CpCo 的 DMF 溶液中后,该化合物经历了单晶体到单晶体的单电子还原,得到(CpCo)(MeNH)[FeL]·4.9DMF。结构和光谱分析证实这种还原是基于配体的,因此三阴离子骨架被表示为[Fe(L)]。对于该还原化合物的磁性测量表明,存在强烈的层内金属-有机自由基偶合,在 T=105 K 以下给出一个有序的相,这是 MOF 中报道的最高有序温度之一。与氧化化合物相比,这个高有序温度显著增加,这是由于额外的有机自由基提供的耦合强度的整体增加。与高临界温度一致,新的 MOF 在 100 K 以下表现出磁滞,这是通过变场测量揭示的。最后,该化合物是导电的,其值高达 σ=5.1(3)×10 S/cm,E=0.34(1)eV。综上所述,这些结果表明金属-醌 MOF 具有同时表现出高磁有序温度和高电导率的独特能力。