Loof Daniel, Thüringer Oliver, Schowalter Marco, Mahr Christoph, Pranti Anmona Shabnam, Lang Walter, Rosenauer Andreas, Zielasek Volkmar, Kunz Sebastian, Bäumer Marcus
Institute of Applied and Physical Chemistry, University of Bremen, Leobener Str. 6, 28359, Bremen, Germany.
Institute of Solid-State Physics, University of Bremen, Otto-Hahn-Allee 1, 28359, Bremen, Germany.
ChemistryOpen. 2021 Jul;10(7):697-712. doi: 10.1002/open.202000344.
Porous networks of Pt nanoparticles interlinked by bifunctional organic ligands have shown high potential as catalysts in micro-machined hydrogen gas sensors. By varying the ligand among p-phenylenediamine, benzidine, 4,4''-diamino-p-terphenyl, 1,5-diaminonaphthalene, and trans-1,4-diaminocyclohexane, new variants of such networks were synthesized. Inter-particle distances within the networks, determined via transmission electron microscopy tomography, varied from 0.8 to 1.4 nm in accordance with the nominal length of the respective ligand. While stable structures with intact and coordinatively bonded diamines were formed with all ligands, aromatic diamines showed superior thermal stability. The networks exhibited mesoporous structures depending on ligand and synthesis strategy and performed well as catalysts in hydrogen gas microsensors. They demonstrate the possibility of deliberately tuning micro- and mesoporosity and thereby transport properties and steric demands by choice of the right ligand also for other applications in heterogeneous catalysis.
由双功能有机配体连接的铂纳米颗粒多孔网络在微机械氢气传感器中作为催化剂显示出很高的潜力。通过改变对苯二胺、联苯胺、4,4''-二氨基对三联苯、1,5-二氨基萘和反式-1,4-二氨基环己烷中的配体,合成了此类网络的新变体。通过透射电子显微镜断层扫描确定的网络内颗粒间距离根据各自配体的标称长度在0.8至1.4 nm之间变化。虽然所有配体都形成了具有完整且配位键合的二胺的稳定结构,但芳香族二胺表现出优异的热稳定性。根据配体和合成策略,这些网络呈现出介孔结构,并且在氢气微传感器中作为催化剂表现良好。它们证明了通过选择合适的配体来故意调节微孔和介孔以及由此调节传输性质和空间需求的可能性,这对于多相催化中的其他应用也是如此。