The structural diversity of highly connected metal–organic frameworks (MOFs) has long been limited due to the scarcity of highly connected metal clusters and the corresponding available topology. Herein, we deliberately chose a series of tritopic linkers with multiple substituents to construct a series of highly connected rare-earth (RE) MOFs. The steric hindrance of these substituents can be systematically tuned to generate various linker rotamers with tunable configurations and symmetries. For example, the methyl-functionalized linker (L-CH3) with C2v symmetry exhibits larger steric hindrance, forcing two peripheral phenyl rings perpendicular to the central one. The combination of C2v linkers and 9-connected RE6 clusters leads to the form...
Careful control of synthetic conditions can enhance the structural diversity of metal–organic framew...
Metal–organic frameworks (MOFs) are an emerging class of porous materials constructed from metal-con...
The T<sub><i>d</i></sub> point group symmetry of rare earth (RE<sup>3+</sup>) metal clusters RE<sub>...
Gaining control over the assembly of highly porous rare-earth (RE) based metal–organic frameworks (M...
Gaining control over the assembly of highly porous rare-earth (RE) based metal–organic frameworks (M...
A Zr(IV)-based metal–organic framework (MOF), termed reo-MOF-1 [Zr6O8(H2O)8(SNDC)4], composed of 4-...
We report a topology-guided, precise insertion of three distinct secondary linkers into a zirconium-...
Structural diversity of metal–organic frameworks (MOFs) has been largely limited to linkers with at ...
Multicomponent metal–organic frameworks (MOFs) promise the precise placement of synergistic function...
Efforts toward predictive topology within the design and synthesis of metal–organic frameworks (MOFs...
The past two decades have witnessed the explosive development of metal-organic frameworks (MOFs) as ...
The work described herein explores an emerging class of metal–organic frameworks (MOFs) that are syn...
Careful control of synthetic conditions can enhance the structural diversity of metal–organic framew...
Metal–organic frameworks (MOFs) are an emerging class of porous materials constructed from metal-con...
The T<sub><i>d</i></sub> point group symmetry of rare earth (RE<sup>3+</sup>) metal clusters RE<sub>...
Gaining control over the assembly of highly porous rare-earth (RE) based metal–organic frameworks (M...
Gaining control over the assembly of highly porous rare-earth (RE) based metal–organic frameworks (M...
A Zr(IV)-based metal–organic framework (MOF), termed reo-MOF-1 [Zr6O8(H2O)8(SNDC)4], composed of 4-...
We report a topology-guided, precise insertion of three distinct secondary linkers into a zirconium-...
Structural diversity of metal–organic frameworks (MOFs) has been largely limited to linkers with at ...
Multicomponent metal–organic frameworks (MOFs) promise the precise placement of synergistic function...
Efforts toward predictive topology within the design and synthesis of metal–organic frameworks (MOFs...
The past two decades have witnessed the explosive development of metal-organic frameworks (MOFs) as ...
The work described herein explores an emerging class of metal–organic frameworks (MOFs) that are syn...
Careful control of synthetic conditions can enhance the structural diversity of metal–organic framew...
Metal–organic frameworks (MOFs) are an emerging class of porous materials constructed from metal-con...
The T<sub><i>d</i></sub> point group symmetry of rare earth (RE<sup>3+</sup>) metal clusters RE<sub>...