Zhang Ruirui, Liu Yan, Ding Pan, Huang Juanjuan, Dierolf Martin, Kelly Shelly D, Qiu Xinqi, Chen Yishuo, Hussain Mian Zahid, Li Weijin, Bunzen Hana, Achterhold Klaus, Pfeiffer Franz, Sharp Ian D, Warnan Julien, Fischer Roland A
Chair of Inorganic and Metal-Organic Chemistry, Department of Chemistry and TUM School of Natural Sciences, Technical University of Munich, Lichtenbergstraße 4, D-85748, Garching, Germany.
College of Chemistry and Materials Science, Anhui Normal University, Wuhu, Anhui, 241000, P. R. China.
Angew Chem Int Ed Engl. 2024 Dec 16;63(51):e202414600. doi: 10.1002/anie.202414600. Epub 2024 Nov 16.
Optimizing the binding energy between the intermediate and the active site is a key factor for tuning catalytic product selectivity and activity in the electrochemical carbon dioxide reduction reaction. Copper active sites are known to reduce CO to hydrocarbons and oxygenates, but suffer from poor product selectivity due to the moderate binding energies of several of the reaction intermediates. Here, we report an ion exchange strategy to construct Cu-Pd paddle wheel dimers within Cu-based metal-organic frameworks (MOFs), [CuPd(BTC)] (BTC=benzentricarboxylate), without altering the overall MOF structural properties. Compared to the pristine Cu MOF ([Cu(BTC)], HKUST-1), the Cu-Pd MOF shifts CO electroreduction products from diverse chemical species to selective CO generation. In situ X-ray absorption fine structure analysis of the catalyst oxidation state and local geometry, combined with theoretical calculations, reveal that the incorporation of Pd within the Cu-Pd paddle wheel node structure of the MOF promotes adsorption of the key intermediate COOH* at the Cu site. This permits CO-selective catalytic mechanisms and thus advances our understanding of the interplay between structure and activity toward electrochemical CO reduction using molecular catalysts.
优化中间体与活性位点之间的结合能是调节电化学二氧化碳还原反应中催化产物选择性和活性的关键因素。已知铜活性位点可将CO还原为碳氢化合物和含氧化合物,但由于几种反应中间体的结合能适中,产物选择性较差。在此,我们报道了一种离子交换策略,用于在铜基金属有机框架(MOF)[CuPd(BTC)](BTC = 苯三甲酸)中构建Cu-Pd桨轮二聚体,而不改变整体MOF结构性质。与原始的铜MOF([Cu(BTC)],HKUST-1)相比,Cu-Pd MOF将CO电还原产物从多种化学物种转变为选择性生成CO。对催化剂氧化态和局部几何结构进行的原位X射线吸收精细结构分析,结合理论计算,表明在MOF的Cu-Pd桨轮节点结构中引入Pd促进了关键中间体COOH*在铜位点的吸附。这允许CO选择性催化机制,从而增进了我们对使用分子催化剂进行电化学CO还原时结构与活性之间相互作用的理解。