WestCHEM, School of Chemistry, University of Glasgow , University Avenue, Glasgow G12 8QQ, U.K.
J Am Chem Soc. 2014 Feb 26;136(8):3304-11. doi: 10.1021/ja5003197. Epub 2014 Feb 18.
Typical catalysts for the electrolysis of water at low pH are based on precious metals (Pt for the cathode and IrO2 or RuO2 for the anode). However, these metals are rare and expensive, and hence lower cost and more abundant catalysts are needed if electrolytically produced hydrogen is to become more widely available. Herein, we show that electrode-film formation from aqueous solutions of first row transition metal ions at pH 1.6 can be induced under the action of an appropriate cell bias and that in the case of cobalt voltages across the cell in excess of 2 V lead to the formation of a pair of catalysts that show functional stability for oxygen evolution and proton reduction for over 24 h. We show that these films are metastable and that if the circuit is opened, they redissolve into the electrolyte bath with concomitant O2 and H2 evolution, such that the overall Faradaic efficiency for charge into the system versus amounts of gases obtained approaches unity for both O2 and H2. This work highlights the ability of first row transition metals to mediate heterogeneous electrolytic water splitting in acidic media by exploiting, rather than trying to avoid, the natural propensity of the catalysts to dissolve at the low pHs used. This in turn we hope will encourage others to examine the promise of metastable electrocatalysts based on abundant elements for a range of reactions for which they have traditionally been overlooked on account of their perceived instability under the prevailing conditions.
在低 pH 值条件下,水的电解的典型催化剂基于贵金属(阴极的 Pt 和阳极的 IrO2 或 RuO2)。然而,这些金属稀有且昂贵,如果要使电解产生的氢气更广泛可用,则需要成本更低且更丰富的催化剂。在此,我们表明,在 pH 值为 1.6 的水溶液中,通过适当的电池偏压作用可以诱导第一过渡金属离子的电极膜形成,并且在钴的情况下,电池的电压超过 2 V 会导致一对催化剂的形成,该催化剂对于氧析出和质子还原具有超过 24 小时的功能稳定性。我们表明,这些膜是亚稳态的,如果断开电路,它们会重新溶解在电解质浴中,同时伴随着 O2 和 H2 的析出,使得对于进入系统的电荷与获得的气体量,整体法拉第效率对于 O2 和 H2 都接近 1。这项工作强调了第一过渡金属通过利用而不是试图避免催化剂在使用的低 pH 值下溶解的自然倾向,在酸性介质中介导非均相电解水分解的能力。反过来,我们希望这将鼓励其他人研究基于丰富元素的亚稳态电催化剂在一系列反应中的应用前景,这些催化剂由于在当前条件下被认为不稳定而一直被忽视。