Javascript must be enabled to continue!
Spin-preserving chiral photonic crystal mirror
View through CrossRef
Abstract
Chirality refers to a geometric phenomenon in which objects are not superimposable on their mirror image. Structures made of nanoscale chiral elements can exhibit chiroptical effects, such as dichroism for left- and right-handed circularly polarized light, which makes these structures highly suitable for applications ranging from quantum information processing and quantum optics to circular dichroism spectroscopy and molecular recognition. At the same time, strong chiroptical effects have been challenging to achieve even in synthetic optical media, and chiroptical effects for light with normal incidence have been speculated to be prohibited in thin, lossless quasi-two-dimensional structures. Here, we report an experimental realization of a giant chiroptical effect in a thin monolithic photonic crystal mirror. Unlike conventional mirrors, our mirror selectively reflects only one spin state of light while preserving its handedness, with a near-unity level of circular dichroism. The operational principle of the photonic crystal mirror relies on guided-mode resonance (GMR) with a simultaneous excitation of leaky transverse electric (TE-like) and transverse magnetic (TM-like) Bloch modes in the photonic crystal slab. Such modes are not reliant on the suppression of radiative losses through long-range destructive interference, and even small areas of the photonic crystal exhibit robust circular dichroism. Despite its simplicity, the mirror strongly outperforms earlier reported structures and, contrary to a prevailing notion, demonstrates that near-unity reflectivity contrast for opposite helicities is achievable in a quasi-two-dimensional structure.
Springer Science and Business Media LLC
Title: Spin-preserving chiral photonic crystal mirror
Description:
Abstract
Chirality refers to a geometric phenomenon in which objects are not superimposable on their mirror image.
Structures made of nanoscale chiral elements can exhibit chiroptical effects, such as dichroism for left- and right-handed circularly polarized light, which makes these structures highly suitable for applications ranging from quantum information processing and quantum optics to circular dichroism spectroscopy and molecular recognition.
At the same time, strong chiroptical effects have been challenging to achieve even in synthetic optical media, and chiroptical effects for light with normal incidence have been speculated to be prohibited in thin, lossless quasi-two-dimensional structures.
Here, we report an experimental realization of a giant chiroptical effect in a thin monolithic photonic crystal mirror.
Unlike conventional mirrors, our mirror selectively reflects only one spin state of light while preserving its handedness, with a near-unity level of circular dichroism.
The operational principle of the photonic crystal mirror relies on guided-mode resonance (GMR) with a simultaneous excitation of leaky transverse electric (TE-like) and transverse magnetic (TM-like) Bloch modes in the photonic crystal slab.
Such modes are not reliant on the suppression of radiative losses through long-range destructive interference, and even small areas of the photonic crystal exhibit robust circular dichroism.
Despite its simplicity, the mirror strongly outperforms earlier reported structures and, contrary to a prevailing notion, demonstrates that near-unity reflectivity contrast for opposite helicities is achievable in a quasi-two-dimensional structure.
Related Results
Two-dimensional function photonic crystal
Two-dimensional function photonic crystal
Photonic crystal is a kind of periodic optical nanostructure consisting of two or more materials with different dielectric constants, which has attracted great deal of attention be...
Advances on broadband and resonant chiral metasurfaces
Advances on broadband and resonant chiral metasurfaces
Abstract
Chirality describes mirror symmetry breaking in geometric structures or certain physical quantities. The interaction between chiral structure and chiral ...
Dynamics of spinor fermions
Dynamics of spinor fermions
Ultracold atomic gases have established themselves as quantum systems, which are clean and offer a high degree of control over crucial parameters. They are well isolated from their...
Tailoring spin dynamics in asymmetric FM1/Pt/FM2 trilayers via Pt spacer thickness
Tailoring spin dynamics in asymmetric FM1/Pt/FM2 trilayers via Pt spacer thickness
The study of trilayers with a non-magnetic (NM) spacer layer separating two ferromagnetic layers (FM/NM/FM) has been an active area of spintronics research due to their real-world ...
Spin to charge current interconversion in Rasha interfaces and topological insulators
Spin to charge current interconversion in Rasha interfaces and topological insulators
Conversion entre courant de spin et courant de charge dans des interfaces Rashba et des isolants topologiques
L'interconversion entre courants de spin et de charge ...
Lasing up to T = 339 K in Subwavelength Nanowire-Induced Photonic Crystal Nanocavities
Lasing up to T = 339 K in Subwavelength Nanowire-Induced Photonic Crystal Nanocavities
We report on lasing operation up to 339K in nanocavities constituted of subwavelength ZnO nanowires integrated in SiN photonic crystals. With thresholds as low as 4MW.cm-2, the inv...
Chiral Ionic Liquids as Stationary Phases in Electrophoretic Separations
Chiral Ionic Liquids as Stationary Phases in Electrophoretic Separations
Ionic liquids (ILs) are exceptional solvents having melting points at or
below 100 0C. They are completely made up of ions, often consisting of an organic
cation and an inorganic o...
Chiral liquid crystal-MOF composites for electrochemical recognition of enantiomers
Chiral liquid crystal-MOF composites for electrochemical recognition of enantiomers
Biological systems rely on the exclusive use of L-configured biomolecules for precise molecular recognition, whereas exposure to D-enantiomers can disrupt immune and metabolic proc...

