Wang Zhi, Zhu Yan-Jie, Ahlstedt Olli, Konstantinou Konstantinos, Akola Jaakko, Tung Chen-Ho, Alkan Fahri, Sun Di
School of Chemistry and Chemical Engineering, State Key Laboratory of Crystal Materials, Shandong University, Ji'nan, 250100, P. R. China.
Computational Physics Laboratory, Tampere University, 33014, Tampere, Finland.
Angew Chem Int Ed Engl. 2024 Jan 15;63(3):e202314515. doi: 10.1002/anie.202314515. Epub 2023 Dec 12.
Polyoxometalates (POMs) represent crucial intermediates in the formation of insoluble metal oxides from soluble metal ions, however, the rapid hydrolysis-condensation kinetics of Mo or W makes the direct characterization of coexisted molecular species in a given medium extremely difficult. Silver nanoclusters have shown versatile capacity to encapsulate diverse POMs, which provides an alternative scene to appreciate landscape of POMs in atomic precision. Here, we report a thiacalix[4]arene protected silver nanocluster (Ag72b) that simultaneously encapsulates three kinds of molybdates (MoO , Mo O and Mo O ) in situ transformed from classic Lindqvist Mo O , providing more deep understanding on the structural diversity and condensation growth route of POMs in solution. Ag72b is the first silver nanocluster trapping so many kinds of molybdates, which in turn exert collective template effect to aggregate silver atoms into a nanocluster. The post-reaction of Ag72b with AgOAc or PhCOOAg produces a discrete Ag nanocluster (Ag24a) or an Ag nanocluster based 1D chain structure (Ag28a), respectively. Moreover, the post-synthesized Ag28a can be utilized as potential ignition material for further application. This work not only provides an important model for unlocking dynamic features of POMs at atom-precise level but also pioneers a promising approach to synthesize silver nanoclusters from known to unknown.
多金属氧酸盐(POMs)是可溶性金属离子形成不溶性金属氧化物过程中的关键中间体,然而,钼或钨快速的水解缩合动力学使得在给定介质中直接表征共存的分子物种极为困难。银纳米团簇已显示出封装多种POMs的通用能力,这为在原子精度上认识POMs的情况提供了另一种视角。在此,我们报道了一种由硫杂杯[4]芳烃保护的银纳米团簇(Ag72b),它同时原位封装了由经典的Lindqvist型MoO₄³⁻转化而来的三种钼酸盐(MoO₄²⁻、Mo₂O₇²⁻和Mo₃O₁₀²⁻),这为深入理解溶液中POMs的结构多样性和缩合生长途径提供了更多信息。Ag72b是首个捕获如此多种钼酸盐的银纳米团簇,反过来这些钼酸盐发挥集体模板效应将银原子聚集形成纳米团簇。Ag72b与醋酸银或苯甲酸银的后续反应分别产生离散的银纳米团簇(Ag24a)或基于银纳米团簇的一维链状结构(Ag28a)。此外,后合成的Ag28a可作为潜在的点火材料用于进一步应用。这项工作不仅为在原子精确水平上揭示POMs的动态特征提供了重要模型,还开创了一种从已知到未知合成银纳米团簇的有前景的方法。