Wang Chen-Hao, Gao Wen-Yang, Ma Qing, Powers David C
Texas A&M University , Department of Chemistry , College Station , TX 77843 , USA . Email:
DND-CAT , Northwestern Synchrotron Research Centre at the Advanced Photon Source , Argonne , IL 60439 , USA.
Chem Sci. 2018 Nov 30;10(6):1823-1830. doi: 10.1039/c8sc04940h. eCollection 2019 Feb 14.
Evaluation of the potential for metal-metal (M-M) cooperation to enable catalysis requires access to specific polynuclear aggregates that display appropriate geometry and size. In many cases, exerting synthetic control over the aggregation of simple metal salts is a challenge. For example, Pd(ii) acetate self assembles as a trimer ( Pd(OAc)) both in the solid state and in solution and does not feature close Pd-Pd interactions. Related carboxylate-supported Pd aggregates ( Pd(OAc)), which would feature close Pd-Pd interactions, are thermodynamically metastable in solution phase and thus largely unavailable. Here we demonstrate ion metathesis within pre-formed metal-organic frameworks (MOFs) to prepare metastable Pd tetracarboxylates sites. The newly synthesized materials are characterized by elemental analysis, PXRD, SCXRD, EXAFS, XANES, and gas adsorption analysis. In addition, the critical role of network solvation on the kinetics of ion metathesis was revealed by coupled TGA-MS and ICP-MS experiments. The demonstration of templated ion metathesis to generate specific metastable coordination sites that are inaccessible in solution phase chemistry represents a new opportunity to interrogate the chemistry of specific polynuclear metal aggregates.
评估金属-金属(M-M)协同作用实现催化的潜力需要获得具有合适几何形状和尺寸的特定多核聚集体。在许多情况下,对简单金属盐的聚集进行合成控制是一项挑战。例如,乙酸钯(II)在固态和溶液中均自组装为三聚体(Pd(OAc)),且不存在紧密的Pd-Pd相互作用。具有紧密Pd-Pd相互作用的相关羧酸盐支撑的Pd聚集体(Pd(OAc))在溶液相中热力学不稳定,因此基本上无法获得。在此,我们展示了在预先形成的金属有机框架(MOF)内进行离子复分解反应以制备亚稳态的四羧基钯位点。通过元素分析、粉末X射线衍射(PXRD)、单晶X射线衍射(SCXRD)、扩展X射线吸收精细结构(EXAFS)、X射线吸收近边结构(XANES)和气体吸附分析对新合成的材料进行了表征。此外,通过热重-质谱联用(TGA-MS)和电感耦合等离子体质谱(ICP-MS)实验揭示了网络溶剂化对离子复分解动力学的关键作用。通过模板离子复分解反应生成溶液相化学中无法获得的特定亚稳态配位位点的证明,为研究特定多核金属聚集体的化学性质提供了新的机会。