Nanoparticle superlattices are periodic arrays of nanoscale inorganic building blocks including metal nanoparticles, quantum dots and magnetic nanoparticles. Such assemblies can exhibit exciting new collective properties different from those of individual nanoparticle or corresponding bulk materials. However, fabrication of nanoparticle superlattices is nontrivial because nanoparticles are notoriously difficult to manipulate due to complex nanoscale forces among them. An effective way to manipulate these nanoscale forces is to use soft ligands, which can prevent nanoparticles from disordered aggregation, fine-tune the interparticle potential as well as program lattice structures and interparticle distances - the two key parameters governing...
Chemical bonds are a key determinant of the structure and properties of a material. Thus, rationally...
Self-assembly of nanocrystals into functional materials requires precise control over nanoparticle i...
The capacity to respond or adapt to environmental changes is an intrinsic property of living systems...
Nanoparticles superlattices can be prepared by self assembly, under strict synthetic control, of hyb...
Multicomponent nanocrystal superlattices represent an interesting class of material that derives eme...
Multicomponent nanocrystal superlattices represent an interesting class of material that derives eme...
Nanocrystal quantum dots are novel materials of great scientific and technological interests. The at...
Nanoparticle crystals or superlattices (SLs) are three dimensional arrangements of nanoparticles in ...
Many researchers are interested in developing methods for rationally assembling nanoparticle buildin...
Size and shape selected nanocrystals behave as fundamental building blocks that can be used to const...
Colloidal crystallisation is the only way to obtain three-dimensional ordered materials in which sem...
Ordered periodic arrays of metal nanoparticles, termed superlattices, are attracting increasing inte...
In 1903 Alexander Graham Bell developed a design principle to generate lightweight, mechanically rob...
Nanocrystalline solids have become the subject of intense study due to their unique optical properti...
The colloidal nanocrystals (NCs) are nanometer-sized inorganic particles with distinctive properties...
Chemical bonds are a key determinant of the structure and properties of a material. Thus, rationally...
Self-assembly of nanocrystals into functional materials requires precise control over nanoparticle i...
The capacity to respond or adapt to environmental changes is an intrinsic property of living systems...
Nanoparticles superlattices can be prepared by self assembly, under strict synthetic control, of hyb...
Multicomponent nanocrystal superlattices represent an interesting class of material that derives eme...
Multicomponent nanocrystal superlattices represent an interesting class of material that derives eme...
Nanocrystal quantum dots are novel materials of great scientific and technological interests. The at...
Nanoparticle crystals or superlattices (SLs) are three dimensional arrangements of nanoparticles in ...
Many researchers are interested in developing methods for rationally assembling nanoparticle buildin...
Size and shape selected nanocrystals behave as fundamental building blocks that can be used to const...
Colloidal crystallisation is the only way to obtain three-dimensional ordered materials in which sem...
Ordered periodic arrays of metal nanoparticles, termed superlattices, are attracting increasing inte...
In 1903 Alexander Graham Bell developed a design principle to generate lightweight, mechanically rob...
Nanocrystalline solids have become the subject of intense study due to their unique optical properti...
The colloidal nanocrystals (NCs) are nanometer-sized inorganic particles with distinctive properties...
Chemical bonds are a key determinant of the structure and properties of a material. Thus, rationally...
Self-assembly of nanocrystals into functional materials requires precise control over nanoparticle i...
The capacity to respond or adapt to environmental changes is an intrinsic property of living systems...