Iqbal Bushra, Saleem Murtaza, Arshad Salman Noshear, Rashid Jamshaid, Hussain Naveed, Zaheer Muhammad
Department of Chemistry and Chemical Engineering, Lahore University of Management Sciences (LUMS), Lahore, 54792, Pakistan.
Department of Physics, Lahore University of, Management Sciences (LUMS), Lahore, 54792, Pakistan.
Chemistry. 2019 Aug 6;25(44):10490-10498. doi: 10.1002/chem.201901939. Epub 2019 Jul 8.
A one-pot synthesis of bimetallic metal-organic frameworks (Co/Fe-MOFs) was achieved by treating stoichiometric amounts of Fe and Co salts with 2-aminoterephthalic acid (NH -BDC). Monometallic Fe (catalyst A) and Co (catalyst F) were also prepared along with mixed-metal Fe/Co catalysts (B-E) by changing the Fe/Co ratio. For mixed-metal catalysts (B-E) SEM energy-dispersive X-ray (EDX) analysis confirmed the incorporation of both Fe and Co in the catalysts. However, a spindle-shaped morphology, typically known for the Fe-MIL-88B structure and confirmed by PXRD analysis, was only observed for catalysts A-D. To test the catalytic potential of mixed-metal MOFs, reduction of nitroarenes was selected as a benchmark reaction. Incorporation of Co enhanced the activity of the catalysts compared with the parent NH -BDC-Fe catalyst. These MOFs were also tested as electrocatalysts for the oxygen evolution reaction (OER) and the best activity was exhibited by mixed-metal Fe/Co-MOF (Fe/Co batch ratio=1). The catalyst provided a current density of 10 mA cm at 410 mV overpotential, which is comparable to the benchmark OER catalyst (i.e., RuO ). Moreover, it showed long-term stability in 1 m KOH. In a third catalytic test, dehydrogenation of sodium borohydride showed high activity (turnover frequency=87 min ) and hydrogen generation rate (67 L min g catalyst). This is the first example of the synthesis of bimetallic MOFs as multifunctional catalysts particularly for catalytic reduction of nitroarenes and dehydrogenation reactions.
通过用2-氨基对苯二甲酸(NH₂-BDC)处理化学计量的铁盐和钴盐,实现了双金属金属有机框架(Co/Fe-MOFs)的一锅法合成。还通过改变Fe/Co比例制备了单金属铁(催化剂A)和钴(催化剂F)以及混合金属Fe/Co催化剂(B-E)。对于混合金属催化剂(B-E),扫描电子显微镜能量色散X射线(EDX)分析证实了催化剂中同时含有铁和钴。然而,仅在催化剂A-D中观察到了典型的Fe-MIL-88B结构的纺锤形形态,这通过粉末X射线衍射(PXRD)分析得到了证实。为了测试混合金属MOF的催化潜力,选择硝基芳烃的还原作为基准反应。与母体NH₂-BDC-Fe催化剂相比,钴的掺入提高了催化剂的活性。这些MOF还作为析氧反应(OER)的电催化剂进行了测试,混合金属Fe/Co-MOF(Fe/Co批量比 = 1)表现出最佳活性。该催化剂在410 mV过电位下提供了10 mA cm⁻²的电流密度,这与基准OER催化剂(即RuO₂)相当。此外,它在1 m KOH中表现出长期稳定性。在第三次催化测试中,硼氢化钠的脱氢显示出高活性(周转频率 = 87 min⁻¹)和氢气产生速率(67 L min⁻¹ g⁻¹催化剂)。这是双金属MOF作为多功能催化剂合成的第一个例子,特别是用于硝基芳烃的催化还原和脱氢反应。