Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals

Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
American Association for the Advancement of Science (AAAS)
Published 2018
Publication Date:
2018-06-23
Publisher:
American Association for the Advancement of Science (AAAS)
Electronic ISSN:
2375-2548
Topics:
Natural Sciences in General
Published by:
_version_ 1836398984314224640
autor Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
beschreibung Cholesteric liquid crystals (CLCs) have a photonic bandgap due to the periodic change of refractive index along their helical axes. The CLCs containing optical gain have served as band-edge lasing resonators. In particular, CLCs in a granular format provide omnidirectional lasing, which are promising as a point light source. However, there is no platform that simultaneously achieves high stability in air and wavelength tunability. We encapsulate CLCs with double shells to design a capsule-type laser resonator. The fluidic CLCs are fully enclosed by an aqueous inner shell that promotes the planar alignment of LC molecules along the interface. The outer shell made of silicone elastomer protects the CLC core and the inner shell from the surroundings. Therefore, the helical axes of the CLCs are radially oriented within the capsules, which provide a stable omnidirectional lasing in the air. At the same time, the fluidic CLCs enable the fine-tuning of lasing wavelength with temperature. The capsules retain their double-shell structure during the dynamic deformation. Therefore, the CLCs in the core maintain the planar alignment along the deformed interface, and a lasing direction can be varied from omnidirectional to bi- or multidirectional, depending on the shape of deformed capsules.
citation_standardnr 6291276
datenlieferant ipn_articles
feed_id 228416
feed_publisher American Association for the Advancement of Science (AAAS)
feed_publisher_url http://www.aaas.org/
insertion_date 2018-06-23
journaleissn 2375-2548
publikationsjahr_anzeige 2018
publikationsjahr_facette 2018
publikationsjahr_intervall 7984:2015-2019
publikationsjahr_sort 2018
publisher American Association for the Advancement of Science (AAAS)
quelle Science Advances
relation http://advances.sciencemag.org/cgi/content/short/4/6/eaat8276?rss=1
search_space articles
shingle_author_1 Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
shingle_author_2 Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
shingle_author_3 Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
shingle_author_4 Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
shingle_catch_all_1 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
Cholesteric liquid crystals (CLCs) have a photonic bandgap due to the periodic change of refractive index along their helical axes. The CLCs containing optical gain have served as band-edge lasing resonators. In particular, CLCs in a granular format provide omnidirectional lasing, which are promising as a point light source. However, there is no platform that simultaneously achieves high stability in air and wavelength tunability. We encapsulate CLCs with double shells to design a capsule-type laser resonator. The fluidic CLCs are fully enclosed by an aqueous inner shell that promotes the planar alignment of LC molecules along the interface. The outer shell made of silicone elastomer protects the CLC core and the inner shell from the surroundings. Therefore, the helical axes of the CLCs are radially oriented within the capsules, which provide a stable omnidirectional lasing in the air. At the same time, the fluidic CLCs enable the fine-tuning of lasing wavelength with temperature. The capsules retain their double-shell structure during the dynamic deformation. Therefore, the CLCs in the core maintain the planar alignment along the deformed interface, and a lasing direction can be varied from omnidirectional to bi- or multidirectional, depending on the shape of deformed capsules.
Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_catch_all_2 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
Cholesteric liquid crystals (CLCs) have a photonic bandgap due to the periodic change of refractive index along their helical axes. The CLCs containing optical gain have served as band-edge lasing resonators. In particular, CLCs in a granular format provide omnidirectional lasing, which are promising as a point light source. However, there is no platform that simultaneously achieves high stability in air and wavelength tunability. We encapsulate CLCs with double shells to design a capsule-type laser resonator. The fluidic CLCs are fully enclosed by an aqueous inner shell that promotes the planar alignment of LC molecules along the interface. The outer shell made of silicone elastomer protects the CLC core and the inner shell from the surroundings. Therefore, the helical axes of the CLCs are radially oriented within the capsules, which provide a stable omnidirectional lasing in the air. At the same time, the fluidic CLCs enable the fine-tuning of lasing wavelength with temperature. The capsules retain their double-shell structure during the dynamic deformation. Therefore, the CLCs in the core maintain the planar alignment along the deformed interface, and a lasing direction can be varied from omnidirectional to bi- or multidirectional, depending on the shape of deformed capsules.
Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_catch_all_3 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
Cholesteric liquid crystals (CLCs) have a photonic bandgap due to the periodic change of refractive index along their helical axes. The CLCs containing optical gain have served as band-edge lasing resonators. In particular, CLCs in a granular format provide omnidirectional lasing, which are promising as a point light source. However, there is no platform that simultaneously achieves high stability in air and wavelength tunability. We encapsulate CLCs with double shells to design a capsule-type laser resonator. The fluidic CLCs are fully enclosed by an aqueous inner shell that promotes the planar alignment of LC molecules along the interface. The outer shell made of silicone elastomer protects the CLC core and the inner shell from the surroundings. Therefore, the helical axes of the CLCs are radially oriented within the capsules, which provide a stable omnidirectional lasing in the air. At the same time, the fluidic CLCs enable the fine-tuning of lasing wavelength with temperature. The capsules retain their double-shell structure during the dynamic deformation. Therefore, the CLCs in the core maintain the planar alignment along the deformed interface, and a lasing direction can be varied from omnidirectional to bi- or multidirectional, depending on the shape of deformed capsules.
Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_catch_all_4 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
Cholesteric liquid crystals (CLCs) have a photonic bandgap due to the periodic change of refractive index along their helical axes. The CLCs containing optical gain have served as band-edge lasing resonators. In particular, CLCs in a granular format provide omnidirectional lasing, which are promising as a point light source. However, there is no platform that simultaneously achieves high stability in air and wavelength tunability. We encapsulate CLCs with double shells to design a capsule-type laser resonator. The fluidic CLCs are fully enclosed by an aqueous inner shell that promotes the planar alignment of LC molecules along the interface. The outer shell made of silicone elastomer protects the CLC core and the inner shell from the surroundings. Therefore, the helical axes of the CLCs are radially oriented within the capsules, which provide a stable omnidirectional lasing in the air. At the same time, the fluidic CLCs enable the fine-tuning of lasing wavelength with temperature. The capsules retain their double-shell structure during the dynamic deformation. Therefore, the CLCs in the core maintain the planar alignment along the deformed interface, and a lasing direction can be varied from omnidirectional to bi- or multidirectional, depending on the shape of deformed capsules.
Lee, S. S., Kim, J. B., Kim, Y. H., Kim, S.-H.
American Association for the Advancement of Science (AAAS)
2375-2548
23752548
shingle_title_1 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
shingle_title_2 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
shingle_title_3 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
shingle_title_4 Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
timestamp 2025-06-30T23:35:45.627Z
titel Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
titel_suche Wavelength-tunable and shape-reconfigurable photonic capsule resonators containing cholesteric liquid crystals
topic TA-TD
uid ipn_articles_6291276