Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, D-14195 Berlin, Germany.
J Am Chem Soc. 2013 Feb 6;135(5):1727-30. doi: 10.1021/ja312223t. Epub 2013 Jan 22.
Gold nanoparticles and sub-nanoparticles famously act as highly efficient and selective low-temperature oxidation catalysts with molecular oxygen, in stark contrast to the nobility of the bulk phase. The origins of this activity and the nature of the active species remain open questions. Gas-phase studies of isolated gold clusters hold promise for disentangling these problems. Here we address the interaction of neutral gold clusters (Au(n); 4 ≤ n ≤ 21) with molecular oxygen by probing the highly characteristic O-O vibrational stretch frequencies. This reveals that for selected cluster sizes the oxygen is highly activated with respect to the free moiety. Complementary quantum chemical calculations provide evidence for substantial electron transfer to the O(2) unit and concomitant rearrangement of the parent gold cluster structure upon binding and activation. This gives evidence for a model of the interaction between neutral gold clusters and molecular oxygen.
金纳米粒子和亚纳米粒子以其作为高效和选择性的低温氧化催化剂而闻名,与体相的贵金属性质形成鲜明对比。这种活性的起源和活性物种的性质仍然是悬而未决的问题。孤立金团簇的气相研究有望解决这些问题。在这里,我们通过探测高度特征的 O-O 振动伸缩频率来研究中性金团簇(Au(n);4 ≤ n ≤ 21)与分子氧的相互作用。这表明,对于选定的团簇尺寸,氧相对于游离部分具有高度的活性。补充的量子化学计算为大量电子转移到 O(2)单元以及结合和激活时母体金团簇结构的相应重排提供了证据。这为中性金团簇与分子氧相互作用的模型提供了证据。