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Title: Photonics and plasmonics go viral: self-assembly of hierarchical metamaterials

Abstract

Sizing and shaping of mesoscale architectures with nanoscale features is a key opportunity to produce the next generation of higher-performing products and at the same time unveil completely new phenomena. This review article discusses recent advances in the design of novel photonic and plasmonic structures using a biology-inspired design. The proteinaceous capsids from viruses have long been discovered as platform technologies enabling unique applications in nanotechnology, materials, bioengineering, and medicine. In the context of materials applications, the highly organized structures formed by viral capsid proteins provide a 3D scaffold for the precise placement of plasmon and gain materials. Based on their highly symmetrical structures, virus-based nanoparticles have a high propensity to self-assemble into higher-order crystalline structures, yielding hierarchical hybrid materials. Recent advances in the field have led to the development of virus-based light harvesting systems, plasmonic structures for application in high-performance metamaterials, binary nanoparticle lattices, and liquid crystalline arrays for sensing or display technologies. In conclusion, there is still much that could be explored in this area, and we foresee that this is only the beginning of great technological advances in virus-based materials for plasmonics and photonics applications.

Authors:
 [1];  [2];  [3];  [4]
  1. Case Western Reserve Univ., Cleveland, OH (United States). Schools of Medicine and Engineering, Dept. of Biomedical Engineering
  2. Univ. of Massachusetts, Amherst, MA (United States). Dept. of Physics; Univ. of Ljubljana, Ljubljana (Slovenia). Jozef Stefan Inst., Dept. of Theoretical Physics, and Dept. of Physics
  3. Case Western Reserve Univ., Cleveland, OH (United States). Schools of Medicine and Engineering, Dept. of Physics; Univ. of Calabria, Rende (Italy). Dept. of Physics
  4. Case Western Reserve Univ., Cleveland, OH (United States). Schools of Medicine and Engineering, Dept. of Biomedical Engineering; Case Western Reserve Univ., Cleveland, OH (United States). School of Medicine, Dept. of Radiology; Case Western Reserve Univ., Cleveland, OH (United States). School of Engineering, Dept. of Materials Science and Engineering; Case Western Reserve Univ., Cleveland, OH (United States). School of Engineering, Dept. of Macromolecular Science and Engineering
Publication Date:
Research Org.:
Univ. of Massachusetts, Amherst, MA (United States)
Sponsoring Org.:
USDOE Office of Science (SC), Basic Energy Sciences (BES); National Science Foundation (NSF); National Institutes of Health (NIH)
OSTI Identifier:
1441150
Grant/Contract Number:  
SC0008176; SC0008068
Resource Type:
Accepted Manuscript
Journal Name:
Rendiconti Lincei
Additional Journal Information:
Journal Volume: 26; Journal Issue: S2; Journal ID: ISSN 2037-4631
Country of Publication:
United States
Language:
English
Subject:
77 NANOSCIENCE AND NANOTECHNOLOGY; 59 BASIC BIOLOGICAL SCIENCES; 36 MATERIALS SCIENCE; Self-assembly; Viral capsids; Plasmonics; Photonics; Nanotechnology

Citation Formats

Wen, Amy M., Podgornik, Rudolf, Strangi, Giuseppe, and Steinmetz, Nicole F. Photonics and plasmonics go viral: self-assembly of hierarchical metamaterials. United States: N. p., 2015. Web. doi:10.1007/s12210-015-0396-3.
Wen, Amy M., Podgornik, Rudolf, Strangi, Giuseppe, & Steinmetz, Nicole F. Photonics and plasmonics go viral: self-assembly of hierarchical metamaterials. United States. https://doi.org/10.1007/s12210-015-0396-3
Wen, Amy M., Podgornik, Rudolf, Strangi, Giuseppe, and Steinmetz, Nicole F. Thu . "Photonics and plasmonics go viral: self-assembly of hierarchical metamaterials". United States. https://doi.org/10.1007/s12210-015-0396-3. https://www.osti.gov/servlets/purl/1441150.
@article{osti_1441150,
title = {Photonics and plasmonics go viral: self-assembly of hierarchical metamaterials},
author = {Wen, Amy M. and Podgornik, Rudolf and Strangi, Giuseppe and Steinmetz, Nicole F.},
abstractNote = {Sizing and shaping of mesoscale architectures with nanoscale features is a key opportunity to produce the next generation of higher-performing products and at the same time unveil completely new phenomena. This review article discusses recent advances in the design of novel photonic and plasmonic structures using a biology-inspired design. The proteinaceous capsids from viruses have long been discovered as platform technologies enabling unique applications in nanotechnology, materials, bioengineering, and medicine. In the context of materials applications, the highly organized structures formed by viral capsid proteins provide a 3D scaffold for the precise placement of plasmon and gain materials. Based on their highly symmetrical structures, virus-based nanoparticles have a high propensity to self-assemble into higher-order crystalline structures, yielding hierarchical hybrid materials. Recent advances in the field have led to the development of virus-based light harvesting systems, plasmonic structures for application in high-performance metamaterials, binary nanoparticle lattices, and liquid crystalline arrays for sensing or display technologies. In conclusion, there is still much that could be explored in this area, and we foresee that this is only the beginning of great technological advances in virus-based materials for plasmonics and photonics applications.},
doi = {10.1007/s12210-015-0396-3},
journal = {Rendiconti Lincei},
number = S2,
volume = 26,
place = {United States},
year = {Thu Mar 05 00:00:00 EST 2015},
month = {Thu Mar 05 00:00:00 EST 2015}
}

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Works referencing / citing this record:

Viral-based nanomaterials for plasmonic and photonic materials and devices
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