Virtue Jemma I, Tsoukatos Steven, Johnston Martin R, Bloch Witold M
Institute for Nanoscale Science and Technology, College of Science and Engineering, Flinders University Bedford Park South Australia 5042 Australia
Chem Sci. 2024 Oct 24;15(45):19119-25. doi: 10.1039/d4sc04913f.
Interlocked coordination cages are a class of multi-cavity architectures with applications in selective anion recognition, adaptive sensing, and catalysis. Controlling the partitioning of their cavities through ligand design and appropriate anion templates is critical to their guest binding scope, yet remains a challenge. Here, we present a thermodynamically stable PdL cage assembled from a bis-monodentate ligand featuring a non-coordinating bis-pyrazole methane backbone. As a result of its idealized dimensions, NMR, ESI-MS, and X-ray analyses reveal that halides can trigger the interpenetration of this cage into a [X@PdL] dimer (X = Cl or Br) where the halide template resides only in the central pocket. The anion-cation pattern of this interlocked host facilitates exceptional binding affinity for the bisulfate anion in its two outer pockets (up to 10 M in MeCN), strongly outcompeting other tetrahedral anions of similar size.
互锁配位笼是一类具有多腔结构的化合物,在选择性阴离子识别、自适应传感和催化等领域有应用。通过配体设计和合适的阴离子模板来控制其腔室的分隔对于它们的客体结合范围至关重要,但仍然是一个挑战。在此,我们展示了一种由具有非配位双吡唑甲烷主链的双单齿配体组装而成的热力学稳定的PdL笼。由于其理想的尺寸,核磁共振(NMR)、电喷雾电离质谱(ESI-MS)和X射线分析表明,卤化物可促使该笼互穿形成[X@PdL]二聚体(X = Cl或Br),其中卤化物模板仅位于中央口袋中。这种互锁主体的阴离子-阳离子模式有利于其两个外部口袋对硫酸氢根阴离子具有非凡的结合亲和力(在乙腈中高达10 M),大大优于其他类似大小的四面体阴离子。