Department of Nanochemistry, Istituto Italiano di Tecnologia (IIT) , via Morego, 30, 16163 Genova, Italy.
J Am Chem Soc. 2013 Nov 20;135(46):17630-7. doi: 10.1021/ja409754v. Epub 2013 Nov 6.
Platelet-shaped copper sulfide nanocrystals (NCs) with tunable Cu stoichiometry were prepared from Cu-rich covellite (Cu1.1S) nanoplates through their reaction with a Cu(I) complex ([Cu(CH3CN)4]PF6) at room temperature. Starting from a common sample, by this approach it is possible to access a range of compositions in these NCs, varying from Cu1.1S up to Cu2S, each characterized by a different optical response: from the metallic covellite, with a high density of free carriers and strong localized surface plasmon resonance (LSPR), up to Cu2S NCs with no LSPR. In all these NCs the valency of Cu in the lattice stays always close to +1, while the average -1 valency of S in covellite gradually evolves to -2 with increasing Cu content; i.e., sulfur is progressively reduced. The addition of copper to the starting covellite NCs is similar to the intercalation of metal species in layered transition metal dichalcogenides (TMDCs); i.e., the chalcogen-chalcogen bonds holding the layers are progressively broken to make room for the intercalated metals, while their overall anion sublattice does not change much. However, differently from the TMDCs, the intercalation in covellite NCs is sustained by a change in the redox state of the anion framework. Furthermore, the amount of Cu incorporated in the NCs upon reaction is associated with the formation of an equimolar amount of Cu(II) species in solution. Therefore, the reaction scheme can be written as: Cu1.1S + 2γCu(I) → Cu1.1+γS + γCu(II).
血小板状硫化铜纳米晶体(NCs)具有可调的 Cu 化学计量比,是通过富铜辉铜矿(Cu1.1S)纳米板与 Cu(I) 配合物([Cu(CH3CN)4]PF6)在室温下反应制备的。从一个共同的样品开始,通过这种方法可以在这些 NCs 中获得一系列的组成,从 Cu1.1S 到 Cu2S,每种都具有不同的光学响应:从具有高密度自由载流子和强局域表面等离子体共振(LSPR)的金属辉铜矿,到没有 LSPR 的 Cu2S NCs。在所有这些 NCs 中,晶格中 Cu 的价态始终接近+1,而辉铜矿中 S 的平均-1 价态随着 Cu 含量的增加逐渐演变为-2;即,硫逐渐被还原。向起始辉铜矿 NCs 中添加铜类似于在层状过渡金属二硫属化物(TMDCs)中插入金属物种;即,保持层的硫-硫键逐渐被打破,为插入的金属腾出空间,而其整体阴离子亚晶格变化不大。然而,与 TMDCs 不同,辉铜矿 NCs 中的插入是由阴离子框架的氧化还原状态变化支撑的。此外,在 NCs 中反应时掺入的 Cu 量与溶液中形成等摩尔量的 Cu(II)物种有关。因此,反应方案可以写成:Cu1.1S + 2γCu(I) → Cu1.1+γS + γCu(II)。