Skip to main page content
U.S. flag

An official website of the United States government

Dot gov

The .gov means it’s official.
Federal government websites often end in .gov or .mil. Before sharing sensitive information, make sure you’re on a federal government site.

Https

The site is secure.
The https:// ensures that you are connecting to the official website and that any information you provide is encrypted and transmitted securely.

Access keys NCBI Homepage MyNCBI Homepage Main Content Main Navigation
Review
. 2020 Oct;32(41):e1801790.
doi: 10.1002/adma.201801790. Epub 2018 Sep 9.

Plasmonic Chirality and Circular Dichroism in Bioassembled and Nonbiological Systems: Theoretical Background and Recent Progress

Affiliations
Review

Plasmonic Chirality and Circular Dichroism in Bioassembled and Nonbiological Systems: Theoretical Background and Recent Progress

Xiang-Tian Kong et al. Adv Mater. 2020 Oct.

Abstract

Nature is chiral, thus chirality is a key concept required to understand a multitude of systems in physics, chemistry, and biology. The field of optics offers valuable tools to probe the chirality of nanosystems, including the measurement of circular dichroism, the differential interaction strength between matter and circularly polarized light with opposite helicity. Simultaneously, the use of plasmonic systems with giant light-interaction cross-sections opens new paths to investigate and manipulate systems on the nanoscale. Consequently, the interest in chiral plasmonic and hybrid systems has continually grown in recent years, due to their potential applications in biosensing, polarization-encoded optical communication, polarization-selective chemical reactions, and materials with polarization-dependent light-matter interaction. Experimentally, chiral properties of nanostructures can be either created artificially using modern fabrication techniques involving inorganic materials, or borrowed from nature using bioassembly or biomolecular templating. Herein, the recent progress in the field of plasmonic chirality is summarized, with a focus on both the theoretical background and the experimental advances in the study of chirality in various systems, including molecular-plasmonic assemblies, chiral plasmonic nanostructures, chiral assemblies of interacting plasmonic nanoparticles, and chiral metal metasurfaces and metamaterials. The growth prospects of this field are also discussed.

Keywords: bio-plasmonics; chirality; circular dichroism; metal nanoparticles; metamaterials; plasmonics.

PubMed Disclaimer

References

    1. J. R. Brandt, F. Salerno, M. J. Fuchter, Nat. Rev. Chem. 2017, 1, 45.
    1. M. Schäferling, Chiral Nanophotonics: Chiral Optical Properties of Plasmonic Systems, Springer Series in Optical Sciences, Vol. 205, (Ed.: M. Schäferling), Springer International Publishing, Cham, Switzerland 2017, Ch. 2.
    1. M. Cotrufo, C. I. Osorio, A. F. Koenderink, ACS Nano 2016, 10, 3389.
    1. A. Pham, M. Berthel, Q. Jiang, J. Bellessa, S. Huant, C. Genet, A. Drezet, Phys. Rev. A 2016, 94, 53850.
    1. W. Li, Z. J. Coppens, L. V. Besteiro, W. Wang, A. O. Govorov, J. Valentine, Nat. Commun. 2015, 6, 8379.

LinkOut - more resources