Dai Shan, Montero-Lanzuela Eva, Tissot Antoine, Baldoví Herme G, García Hermenegildo, Navalón Sergio, Serre Christian
Institut des Matériaux Poreux de Paris, Ecole Normale Supérieure, ESPCI Paris, CNRS, PSL University 75005 Paris France
Departamento de Química, Universitat Politècnica de València C/Camino de Vera, s/n 46022 Valencia Spain
Chem Sci. 2023 Feb 24;14(13):3451-3461. doi: 10.1039/d2sc05161c. eCollection 2023 Mar 29.
The development of MOF-based efficient and reusable catalysts for hydrogen production under simulated sunlight irradiation, especially through overall water splitting, remains challenging. This is mainly due to either the inappropriate optical features or poor chemical stability of the given MOFs. Room temperature synthesis (RTS) of tetravalent MOFs is a promising strategy to design robust MOFs and their related (nano)composites. By employing these mild conditions, herein, we report for the first time that RTS leads to the efficient formation of highly redox active Ce(iv)-MOFs that are inaccessible at elevated temperatures. Consequently, not only highly crystalline Ce-UiO-66-NH is synthesized, but also many other derivatives and topologies (8 and 6-connected phases) without compromise in space-time yield. Their photocatalytic HER and OER activities under simulated sunlight irradiation are in good agreement with their energy level band diagrams: Ce-UiO-66-NH and Ce-UiO-66-NO are the most active photocatalysts for the HER and OER, respectively, with a higher activity than other metal-based UiO-type MOFs. Combining Ce-UiO-66-NH with supported Pt NPs results finally in one of the most active and reusable photocatalysts for overall water splitting into H and O under simulated sunlight irradiation, due to its efficient photoinduced charge separation evidenced by laser flash photolysis and photoluminescence spectroscopies.
开发基于金属有机框架(MOF)的高效且可重复使用的催化剂,用于在模拟太阳光照射下制氢,尤其是通过全水分解来制氢,仍然具有挑战性。这主要是由于给定MOF的光学特性不合适或化学稳定性较差。四价MOF的室温合成(RTS)是设计坚固的MOF及其相关(纳米)复合材料的一种有前景的策略。通过采用这些温和的条件,在此我们首次报道RTS导致高效形成在高温下无法获得的高氧化还原活性的Ce(IV)-MOF。因此,不仅合成了高度结晶的Ce-UiO-66-NH,还合成了许多其他衍生物和拓扑结构(8和6连接相),且时空产率没有受到影响。它们在模拟太阳光照射下的光催化析氢反应(HER)和析氧反应(OER)活性与其能级带图高度吻合:Ce-UiO-66-NH和Ce-UiO-66-NO分别是HER和OER最具活性的光催化剂,其活性高于其他基于金属的UiO型MOF。将Ce-UiO-66-NH与负载的Pt NPs相结合,最终得到了一种在模拟太阳光照射下将水全分解为H₂和O₂的最具活性和可重复使用的光催化剂之一,这是由于激光闪光光解和光致发光光谱证明其具有高效的光致电荷分离能力。