首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Introduction of a secondary ligand into titanium-based metal-organic frameworks for visible-light-driven photocatalytic hydrogen peroxide production from dioxygen reduction
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Introduction of a secondary ligand into titanium-based metal-organic frameworks for visible-light-driven photocatalytic hydrogen peroxide production from dioxygen reduction

机译:将二级配体引入钛基金属有机框架,用于从二恶英还原中获得可见光光催化过氧化氢的过氧化氢。

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The introduction of multiple components with specific properties into metal-organic frameworks (MOFs) is an attractive strategy to modify their catalytic properties. Herein, through the introduction of the ligand 4,4 ',4 '',4 '''-(pyrene-1,3,6,8-tetrayl)tetrabenzoic acid (L2) into MIL-125 during its synthesis, four L2-functionalized titanium-based MOFs, MIL-125-xL2 (x = 0.035, 0.07, 0.14, and 0.21), were successfully prepared for the first time. Due to the introduction of the L2 ligand, the morphology of MIL-125-xL2 crystallites changed from a plate to an octahedron, and these MOFs contained more structural defects of missing ligands and possessed slightly larger BET surface areas and pore volumes. Most importantly, MIL-125-xL2 achieved a high photoactivity for H2O2 production from the dioxygen (O-2) reduction reaction that cannot be catalyzed by pristine MIL-125. The most active MIL-125-0.14L2 displayed a remarkable H2O2 production rate of 1654 mu mol L-1 h(-1) under visible-light irradiation (lambda > 400 nm) using triethanolamine as a sacrificial agent. Such high activity can be attributed to the unique visible light absorption ability of L2, which originates from the large aromatic ring consisting of an extended pi-electron system, making MIL-125-xL2 a visible-light-driven catalyst. This work provides an effective strategy for the design of multi-functional MOFs and enriches the application of MOFs in the field of new energy production.
机译:在金属有机骨架(MOF)中引入具有特定性质的多组分是一种有吸引力的策略,可以改变它们的催化性能。在此,通过在合成过程中将配体4,4',4',4',4'''-(芘-1,3,6,8-四酰基)四苯甲酸(L2)引入MIL-125中,首次成功制备了四种L2官能化钛基MOF MIL-125-xL2(x=0.035、0.07、0.14和0.21)。由于L2配体的引入,MIL-125-xL2微晶的形态从板状转变为八面体,这些MOF含有更多缺失配体的结构缺陷,具有稍大的BET表面积和孔体积。最重要的是,MIL-125-xL2在氧气(O-2)还原反应中获得了高光活性,这是原始MIL-125无法催化的。最活跃的MIL-125-0.14L2在三乙醇胺作为牺牲剂的可见光照射(λ>400 nm)下表现出显著的H2O2生成率,为1654μmol L-1 h(-1)。如此高的活性可归因于L2独特的可见光吸收能力,其来源于由扩展pi电子系统组成的大芳香环,使MIL-125-xL2成为可见光驱动的催化剂。这项工作为多功能MOF的设计提供了有效的策略,丰富了MOF在新能源生产领域的应用。

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