Controlling and understanding the mechanisms that harness crystallization processes is of utmost importance in contemporary materials science and, in particular, in the realm of reticular solids where it still remains a great challenge. In this work, we show that environments mimicking microgravity conditions can harness the size and shape of functional biogenic crystals such as peptide-based metal–organic frameworks (MOFs). In particular, we demonstrate formation of the largest single crystals with controlled nonequilibrium shapes of peptide-based MOFs reported to date (e.g., those featuring curved crystal habits), as opposed to the typical polyhedral microcrystals obtained under bulk crystallization conditions. Such unique nonequilibrium ...
Metal–organic frameworks (MOFs) are among the most sophisticated nanostructured solids: they often p...
Crystal architectures delimited by sinuous boundaries and exhibiting complex hierarchical structures...
Coordination polymers (CPs), including metal–organic frameworks (MOFs), are crystalline materials wi...
Control over Metal-organic framework (MOF) size and morphology is interesting for both fundamental a...
Organisms routinely produce minerals, called biominerals, with altered materials properties compared...
Observations in crystal growth and assembly from recent in situ methods suggest alternative, non-cla...
Biomimetic mineralization of metal–organic frameworks (MOFs) exploits the use of biomolecules to con...
Metal–organic frameworks are versatile structures with many different applications, from industry to...
As metal–organic frameworks (MOFs) are coming of age, their structural diversity, exceptional porosi...
Crystals in nature often demonstrate curved morphologies rather than classical faceted surfaces. Ins...
Understanding the crystallization pathway is of fundamental importance in controlling structures and...
Mesocrystalssuperstructures of crystalline nanoparticles that are aligned in a crystallographic fas...
Space is expected to be a convection-free, quiescent environment for the production of large-size an...
This project investigated the non-classical crystal growth of two different metal-organic frameworks...
Mesocrystals—superstructures of crystalline nanoparticles that are aligned in a crystallographic fas...
Metal–organic frameworks (MOFs) are among the most sophisticated nanostructured solids: they often p...
Crystal architectures delimited by sinuous boundaries and exhibiting complex hierarchical structures...
Coordination polymers (CPs), including metal–organic frameworks (MOFs), are crystalline materials wi...
Control over Metal-organic framework (MOF) size and morphology is interesting for both fundamental a...
Organisms routinely produce minerals, called biominerals, with altered materials properties compared...
Observations in crystal growth and assembly from recent in situ methods suggest alternative, non-cla...
Biomimetic mineralization of metal–organic frameworks (MOFs) exploits the use of biomolecules to con...
Metal–organic frameworks are versatile structures with many different applications, from industry to...
As metal–organic frameworks (MOFs) are coming of age, their structural diversity, exceptional porosi...
Crystals in nature often demonstrate curved morphologies rather than classical faceted surfaces. Ins...
Understanding the crystallization pathway is of fundamental importance in controlling structures and...
Mesocrystalssuperstructures of crystalline nanoparticles that are aligned in a crystallographic fas...
Space is expected to be a convection-free, quiescent environment for the production of large-size an...
This project investigated the non-classical crystal growth of two different metal-organic frameworks...
Mesocrystals—superstructures of crystalline nanoparticles that are aligned in a crystallographic fas...
Metal–organic frameworks (MOFs) are among the most sophisticated nanostructured solids: they often p...
Crystal architectures delimited by sinuous boundaries and exhibiting complex hierarchical structures...
Coordination polymers (CPs), including metal–organic frameworks (MOFs), are crystalline materials wi...