The mechanisms for nanoparticle self-assembly are often inferred from the morphology of the final nanostructures in terms of attractive and repulsive interparticle interactions. Understanding how nanoparticle building blocks are pieced together during self-assembly is a key missing component needed to unlock new strategies and mechanistic understanding of this process. Here we use real-time nanoscale kinetics derived from liquid cell transmission electron microscopy investigation of nanoparticle self-assembly to show that nanoparticle mobility dictates the pathway for self-assembly and final nanostructure morphology. We describe a new method for modulating nanoparticle diffusion in a liquid cell, which we employ to systematically investigat...
Nanoparticles (NPs) confined in thin layers of liquid within liquid cells used for in situ transmiss...
Solution-phase self-assembly of nanocrystals into mesoscale structures is a promising strategy for c...
Self-assembly processes play a key role in the fabrication of functional nano-structures with widesp...
The mechanisms for nanoparticle self-assembly are often inferred from the morphology of the final na...
Nanoparticle self-assembly has been well studied theoretically, but it remains challenging to direct...
Nanoparticle self-assembly has been well studied theoretically, but it remains challenging to direct...
Drying a colloidal solution of nanoparticles is a versatile method to construct self-assembled struc...
Drying a colloidal solution of nanoparticles is a versatile method to construct self-assembled struc...
Liquid cell transmission electron microscopy is a powerful tool for visualizing nanoparticle (NP) as...
Drying a nanoparticle dispersion is a versatile way to create self-assembled structures of nanoparti...
Experiments with the self-assembly of nanoparticles at liquid interfaces suggest that cooperative an...
Numerous mechanisms have been studied for chemical reactions to provide quantitative predictions on ...
Liquid-phase transmission electron microscopy (TEM) has been widely used for probing solution-phase ...
We can learn about the interactions between nanoparticles (NPs) in solution and solid surfaces by tr...
Nanoparticles (NPs) confined in thin layers of liquid within liquid cells used for in situ transmiss...
Solution-phase self-assembly of nanocrystals into mesoscale structures is a promising strategy for c...
Self-assembly processes play a key role in the fabrication of functional nano-structures with widesp...
The mechanisms for nanoparticle self-assembly are often inferred from the morphology of the final na...
Nanoparticle self-assembly has been well studied theoretically, but it remains challenging to direct...
Nanoparticle self-assembly has been well studied theoretically, but it remains challenging to direct...
Drying a colloidal solution of nanoparticles is a versatile method to construct self-assembled struc...
Drying a colloidal solution of nanoparticles is a versatile method to construct self-assembled struc...
Liquid cell transmission electron microscopy is a powerful tool for visualizing nanoparticle (NP) as...
Drying a nanoparticle dispersion is a versatile way to create self-assembled structures of nanoparti...
Experiments with the self-assembly of nanoparticles at liquid interfaces suggest that cooperative an...
Numerous mechanisms have been studied for chemical reactions to provide quantitative predictions on ...
Liquid-phase transmission electron microscopy (TEM) has been widely used for probing solution-phase ...
We can learn about the interactions between nanoparticles (NPs) in solution and solid surfaces by tr...
Nanoparticles (NPs) confined in thin layers of liquid within liquid cells used for in situ transmiss...
Solution-phase self-assembly of nanocrystals into mesoscale structures is a promising strategy for c...
Self-assembly processes play a key role in the fabrication of functional nano-structures with widesp...