ConspectusOver the past three decades, discrete metal–organic cages (MOCs) have captured significant interest as a versatile class of supramolecular architectures. MOCs are discrete molecular assemblies of organic ligands and metal nodes (ions/clusters) that possess an intrinsic porosity. Unlike extended frameworks (MOFs), their discrete nature affords superior solution processability, modifiability, and structural tunability. Collectively, these attributes underpin diverse applications in molecular recognition, catalysis, separation, optics, and so on.Building on their discrete nature, MOCs’ predesigned architectures inherently facilitate postsynthetic modification (PSM), enabling the installation of new functional groups and properties via the tailored modification of linkers, metal nodes, pores, or surface environments. To date, a number of stable MOCs have been reported, several of which have been utilized for PSM, such as paddle-wheel Cu-MOCs and hydrothermally stable Zr-MOCs. The development of these stable precursors has unlocked new avenues for functionalization, transcending the limitations of direct synthesis.In 2017, we reported the first example of anionic coordination titanium tetrahedra (Ti4L6) featuring calixarene-like coordination-active vertices. Self-assembled from mononuclear Ti nodes and rigid-flexible hydroxycarboxylate ligands, these cages possess unique structural features. Specifically, they exhibit excellent solution processability and abundant active sites (e.g., exposed oxygen atoms and naphthalene rings), which render them ideal for hierarchical assembly (including PSM). Since then, substantial progress in this area has enabled the generation of a diverse range of structures.In this Account, we systematically summarize these developments, focusing on four key pathways: (1) surface modification for catalysis and circularly polarized luminescence (CPL); (2) coordination-assembled cage-based frameworks for molecular recognition/separation; (3) supramolecular assembly (H-bonding/π–π stacking) for nonlinear optics (NLO); and (4) template-directed synthesis of rare cage-supported MOFs for enhanced NLO. Notably, this Account addresses the existing gap in integrating the “precursor design → hierarchical assembly → functional application” pipeline for Ti4L6 cages, providing a coherent conceptual framework for researchers in supramolecular chemistry and materials science. Finally, the future perspectives for Ti4L6 cages are discussed to guide further innovation in this evolving field.
He et al. (Sat,) studied this question.