Journal Article10.1038/NATURE08906
Lock and key colloids
TL;DR: In this article, an alternative recognition mechanism for directing the assembly of composite structures, based on particles with complementary shapes, is presented. But the mechanism is limited to the case where the size of a colloidal key particle matches the radius of the spherical cavity of a lock particle.
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Abstract: New functional materials can in principle be created using colloids that self-assemble into a desired structure by means of a programmable recognition and binding scheme. This idea has been explored by attaching 'programmed' DNA strands to nanometre- and micrometre- sized particles and then using DNA hybridization to direct the placement of the particles in the final assembly. Here we demonstrate an alternative recognition mechanism for directing the assembly of composite structures, based on particles with complementary shapes. Our system, which uses Fischer's lock-and-key principle, employs colloidal spheres as keys and monodisperse colloidal particles with a spherical cavity as locks that bind spontaneously and reversibly via the depletion interaction. The lock-and-key binding is specific because it is controlled by how closely the size of a spherical colloidal key particle matches the radius of the spherical cavity of the lock particle. The strength of the binding can be further tuned by adjusting the solution composition or temperature. The composite assemblies have the unique feature of having flexible bonds, allowing us to produce flexible dimeric, trimeric and tetrameric colloidal molecules as well as more complex colloidal polymers. We expect that this lock-and-key recognition mechanism will find wider use as a means of programming and directing colloidal self-assembly.
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References
Controlled growth of monodisperse silica spheres in the micron size range
TL;DR: In this article, a system of chemical reactions has been developed which permits the controlled growth of spherical silica particles of uniform size by means of hydrolysis of alkyl silicates and subsequent condensation of silicic acid in alcoholic solutions.
14.2K
A DNA-based Method for Rationally Assembling Nanoparticles Into Macroscopic Materials
TL;DR: A method for assembling colloidal gold nanoparticles rationally and reversibly into macroscopic aggregates by using the specificity of DNA interactions to direct the interactions between particles of different size and composition is described.
6.6K
Einfluss der Configuration auf die Wirkung der Enzyme
TL;DR: In this article, the Spaltung der Glucoside durch die Enzyme der Hefe and das Emulsin in hohem Grade von der Konfiguration des Molekuls abhangig is discussed.
1.7K
DNA-guided crystallization of colloidal nanoparticles
TL;DR: The formation of three-dimensional crystalline assemblies of gold nanoparticles mediated by interactions between complementary DNA molecules attached to the nanoparticles’ surface is reported, and it is found that the nanoparticle crystals form reversibly during heating and cooling cycles.
1.5K