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Macroscopic photonic single crystals via seeded growth of DNA-coated colloids
by
Hensley, Alexander
, Seyforth, Hunter
, Jacobs, William M.
, Videbæk, Thomas E.
, Rogers, W. Benjamin
in
639/301/923/916
/ 639/301/923/966
/ Colloids
/ Colloids - chemistry
/ Crystal growth
/ Crystal structure
/ Crystallization
/ Crystals
/ Deoxyribonucleic acid
/ DNA
/ Humanities and Social Sciences
/ Metamaterials
/ Microfluidics
/ multidisciplinary
/ Nucleation
/ Optical properties
/ Optical scales
/ Optics and Photonics
/ Photonic crystals
/ Photons
/ Science
/ Science (multidisciplinary)
/ Self-assembly
/ Single crystals
/ Visible spectrum
/ Wavelengths
2023
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Macroscopic photonic single crystals via seeded growth of DNA-coated colloids
by
Hensley, Alexander
, Seyforth, Hunter
, Jacobs, William M.
, Videbæk, Thomas E.
, Rogers, W. Benjamin
in
639/301/923/916
/ 639/301/923/966
/ Colloids
/ Colloids - chemistry
/ Crystal growth
/ Crystal structure
/ Crystallization
/ Crystals
/ Deoxyribonucleic acid
/ DNA
/ Humanities and Social Sciences
/ Metamaterials
/ Microfluidics
/ multidisciplinary
/ Nucleation
/ Optical properties
/ Optical scales
/ Optics and Photonics
/ Photonic crystals
/ Photons
/ Science
/ Science (multidisciplinary)
/ Self-assembly
/ Single crystals
/ Visible spectrum
/ Wavelengths
2023
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Macroscopic photonic single crystals via seeded growth of DNA-coated colloids
by
Hensley, Alexander
, Seyforth, Hunter
, Jacobs, William M.
, Videbæk, Thomas E.
, Rogers, W. Benjamin
in
639/301/923/916
/ 639/301/923/966
/ Colloids
/ Colloids - chemistry
/ Crystal growth
/ Crystal structure
/ Crystallization
/ Crystals
/ Deoxyribonucleic acid
/ DNA
/ Humanities and Social Sciences
/ Metamaterials
/ Microfluidics
/ multidisciplinary
/ Nucleation
/ Optical properties
/ Optical scales
/ Optics and Photonics
/ Photonic crystals
/ Photons
/ Science
/ Science (multidisciplinary)
/ Self-assembly
/ Single crystals
/ Visible spectrum
/ Wavelengths
2023
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Macroscopic photonic single crystals via seeded growth of DNA-coated colloids
Journal Article
Macroscopic photonic single crystals via seeded growth of DNA-coated colloids
2023
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Overview
Photonic crystals—a class of materials whose optical properties derive from their structure in addition to their composition—can be created by self-assembling particles whose sizes are comparable to the wavelengths of visible light. Proof-of-principle studies have shown that DNA can be used to guide the self-assembly of micrometer-sized colloidal particles into fully programmable crystal structures with photonic properties in the visible spectrum. However, the extremely temperature-sensitive kinetics of micrometer-sized DNA-functionalized particles has frustrated attempts to grow large, monodisperse crystals that are required for photonic metamaterial applications. Here we describe a robust two-step protocol for self-assembling single-domain crystals that contain millions of optical-scale DNA-functionalized particles: Monodisperse crystals are initially assembled in monodisperse droplets made by microfluidics, after which they are grown to macroscopic dimensions via seeded diffusion-limited growth. We demonstrate the generality of our approach by assembling different macroscopic single-domain photonic crystals with metamaterial properties, like structural coloration, that depend on the underlying crystal structure. By circumventing the fundamental kinetic traps intrinsic to crystallization of optical-scale DNA-coated colloids, we eliminate a key barrier to engineering photonic devices from DNA-programmed materials.
DNA-programmed colloidal assembly of macroscopic crystals for photonic applications remains elusive. Here, the authors use insights from studies of nucleation and seeded growth to develop a two-step method for assembling macroscopic photonic crystals.
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