| Literature DB >> 31777449 |
Linhan Lin1,2, Sergey Lepeshov3, Alex Krasnok4,5, Taizhi Jiang6, Xiaolei Peng2, Brian A Korgel2,6, Andrea Alù4,5,7,8, Yuebing Zheng1,2.
Abstract
Chirality is a ubiquitous phenomenon in the natural world. Many biomolecules without inversion symmetry such as amino acids and sugars are chiral molecules. Measuring and controlling molecular chirality at a high precision down to the atomic scale are highly desired in physics, chemistry, biology, and medicine, however, have remained challenging. Herein, we achieve all-optical reconfigurable chiral meta-molecules experimentally using metallic and dielectric colloidal particles as artificial atoms or building blocks to serve at least two purposes. One is that the on-demand meta-molecules with strongly enhanced optical chirality are well-suited as substrates for surface-enhanced chiroptical spectroscopy of chiral molecules and as active components in optofluidic and nanophotonic devices. The other is that the bottom-up-assembled colloidal meta-molecules provide microscopic models to better understand the origin of chirality in the actual atomic and molecular systems.Entities:
Keywords: bottom-up assembly; metamolecules; optical chirality; opto-thermoelectric tweezers
Year: 2019 PMID: 31777449 PMCID: PMC6880947 DOI: 10.1016/j.mattod.2019.02.015
Source DB: PubMed Journal: Mater Today (Kidlington) ISSN: 1369-7021 Impact factor: 31.041