Deegan Meaghan M, Ahmed Tonia S, Yap Glenn P A, Bloch Eric D
Department of Chemistry & Biochemistry, University of Delaware Newark DE 19716 USA
Department of Chemistry and Chemical Biology, Harvard University 12 Oxford Street Cambridge MA 02138 USA.
Chem Sci. 2020 May 4;11(20):5273-5279. doi: 10.1039/d0sc01833c.
We describe the synthesis of Fe(ii)-based octahedral coordination cages supported by calixarene capping ligands. The most porous of these molecular cages has an argon accessible BET surface area of 898 m g (1497 m g Langmuir). The modular synthesis of molecular cages allows for straightforward substitution of both the bridging carboxylic acid ligands and the calixarene caps to tune material properties. In this context, the adsorption enthalpies of C/C hydrocarbons ranged from -24 to -46 kJ mol at low coverage, where facile structural modifications substantially influence hydrocarbon uptakes. These materials exhibit remarkable stability toward oxidation or decomposition in the presence of air and moisture, but application of a suitable chemical oxidant generates oxidized cages over a controlled range of redox states. This provides an additional handle for tuning the porosity and stability of the Fe cages.
我们描述了由杯芳烃封端配体支撑的铁(II)基八面体配位笼的合成。这些分子笼中孔隙率最高的具有898 m²/g(1497 m²/g朗缪尔)的氩可及BET表面积。分子笼的模块化合成允许直接取代桥连羧酸配体和杯芳烃封端,以调节材料性能。在此背景下,在低覆盖率下,碳/碳氢化合物的吸附焓范围为-24至-46 kJ/mol,其中简便的结构修饰对烃类吸收有显著影响。这些材料在空气和水分存在下对氧化或分解表现出显著的稳定性,但应用合适的化学氧化剂可在可控的氧化还原状态范围内生成氧化笼。这为调节铁笼的孔隙率和稳定性提供了额外的手段。