TY - JOUR
T1 - Recent Advances in Hierarchical Porous Organic Cages
T2 - From Discrete Structure to Integrated Assemblies
AU - Ziaee, Muhammad Asad
AU - Cui, Yu Qi
AU - Ai, Hui
AU - Sun, Jian Ke
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - In nature, functional complexity often arises from multiscale assembly across hierarchical levels. Inspired by this principle, porous organic cages (POCs), featuring well-defined intrinsic cavities, solution processability, and high chemical tunability, have emerged as versatile molecular platforms for multiscale materials engineering. This concept highlights representative examples in which POCs act as modular, shape-persistent building blocks within hierarchical assemblies, and elucidates how their confined cavities, solubility, and structural modularity enable the rational construction of sophisticated materials systems. At the molecular level, POCs function as enzyme-mimetic hosts that encapsulate and stabilize metal clusters (MCs) within discrete cavities. Benefiting from their structural tunability, POCs can also serve as bulky building blocks for integration into extended frameworks (e.g., COFs, MOFs, and supramolecular frameworks), as well as for the construction of nested host-in-host architectures and well-ordered multiscale crystalline materials. Such hierarchical assembly integrates structural advantages across length scales by preserving intrinsic porosity while introducing efficient mass and electron transport pathways, thereby enabling enhanced separation and catalytic performance. By translating bioinspired design principles into synthetic materials, these systems offer a programmable route towards multifunctional platforms.
AB - In nature, functional complexity often arises from multiscale assembly across hierarchical levels. Inspired by this principle, porous organic cages (POCs), featuring well-defined intrinsic cavities, solution processability, and high chemical tunability, have emerged as versatile molecular platforms for multiscale materials engineering. This concept highlights representative examples in which POCs act as modular, shape-persistent building blocks within hierarchical assemblies, and elucidates how their confined cavities, solubility, and structural modularity enable the rational construction of sophisticated materials systems. At the molecular level, POCs function as enzyme-mimetic hosts that encapsulate and stabilize metal clusters (MCs) within discrete cavities. Benefiting from their structural tunability, POCs can also serve as bulky building blocks for integration into extended frameworks (e.g., COFs, MOFs, and supramolecular frameworks), as well as for the construction of nested host-in-host architectures and well-ordered multiscale crystalline materials. Such hierarchical assembly integrates structural advantages across length scales by preserving intrinsic porosity while introducing efficient mass and electron transport pathways, thereby enabling enhanced separation and catalytic performance. By translating bioinspired design principles into synthetic materials, these systems offer a programmable route towards multifunctional platforms.
KW - application
KW - host-in-host structure
KW - multiscale assembly
KW - open framework
KW - porous organic cage
UR - https://www.scopus.com/pages/publications/105040629783
U2 - 10.1002/chem.71212
DO - 10.1002/chem.71212
M3 - Review article
AN - SCOPUS:105040629783
SN - 0947-6539
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
ER -