Terekhina Irina, Johnsson Mats
Department of Materials and Environmental Chemistry, Arrhenius Laboratory, Stockholm University, Stockholm SE-106 91, Sweden.
ACS Appl Mater Interfaces. 2024 Oct 23;16(42):56987-56996. doi: 10.1021/acsami.4c10219. Epub 2024 Oct 14.
As glycerol (GLY) has emerged as a highly functional and cheap platform molecule and as an abundant biodiesel production byproduct, possible conversion methods have been investigated. One of the promising approaches is the glycerol electrooxidation (GEOR) on noble metal-based catalysts. Although noble metals, especially Pt, are generally very stable at different pH and highly selective toward three-carbon (C3) products, their electrocatalytic performance can be further improved by morphology tuning and alloying with non-noble metals like Co. In the present study, cubic PtCo ( = 100, 80, and 60) nanoparticles were investigated in an alkaline medium at 20 and 40 °C. The effect of the composition and reaction conditions on the selectivity of the GEOR toward C3 products like lactate and glycerate was studied, and the reaction mechanism was discussed. The highest mass activity was found for PtCo, although when the specific activity, glycerol conversion, and GEOR selectivity were compared, PtCo was the superior catalyst overall. In general, all catalysts, even those that are Co-rich, exhibited a high C3 product selectivity up to 95% at 0.67 V vs RHE. The low applied potential of 0.67 V vs RHE at 40 °C facilitated lactate formation with selectivity up to 72%. At the same time, the glycerate formation with a selectivity of up to 40%, as well as C-C bond cleavage, was more favored at 0.87 V vs RHE.
由于甘油(GLY)已成为一种功能强大且廉价的平台分子,同时也是生物柴油生产中丰富的副产物,因此人们对其可能的转化方法进行了研究。一种有前景的方法是在贵金属基催化剂上进行甘油电氧化(GEOR)。尽管贵金属,尤其是Pt,通常在不同pH值下非常稳定,并且对三碳(C3)产物具有高度选择性,但其电催化性能可通过形貌调控以及与Co等非贵金属合金化来进一步提高。在本研究中,对立方相PtCo( = 100、80和60)纳米颗粒在20℃和40℃的碱性介质中进行了研究。研究了组成和反应条件对GEOR对乳酸和甘油酸等C3产物选择性的影响,并讨论了反应机理。发现PtCo具有最高的质量活性,不过在比较比活性、甘油转化率和GEOR选择性时,PtCo总体上是更优的催化剂。一般来说,所有催化剂,即使是富含Co的催化剂,在相对于可逆氢电极(RHE)为0.67 V时,对C3产物的选择性高达95%。在40℃下相对于RHE为0.67 V的低施加电位有利于乳酸的形成,选择性高达72%。同时,在相对于RHE为0.87 V时,甘油酸的形成选择性高达40%,以及C-C键的断裂更占优势。