Topological liquid crystal superstructures as structured light lasers
Proceedings of the National Academy of Sciences of the United States of America, ISSN: 1091-6490, Vol: 118, Issue: 49
2021
- 24Citations
- 26Captures
- 1Mentions
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Example: if you select the 1-year option for an article published in 2019 and a metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019. If you select the 3-year option for the same article published in 2019 and the metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019, 2018 and 2017.
Citation Benchmarking is provided by Scopus and SciVal and is different from the metrics context provided by PlumX Metrics.
Metrics Details
- Citations24
- Citation Indexes24
- 24
- CrossRef16
- Captures26
- Readers26
- 26
- Mentions1
- News Mentions1
- News1
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Spin–orbit microlaser emitting in a four-dimensional Hilbert space
Nature, Published online: 16 November 2022; doi:10.1038/s41586-022-05339-z A fully integrated semiconductor microlaser that exploits spin–orbit coupling of light emits in a four-dimensional Hilbert space, with flexible control of up to six degrees of freedom.
Article Description
Liquid crystals (LCs) form an extremely rich range of self-assembled topological structures with artificially or naturally created topological defects. Some of the main applications of LCs are various optical and photonic devices, where compared to their solid-state counterparts, soft photonic systems are fundamentally different in terms of unique properties such as self-assembly, self-healing, large tunability, sensitivity to external stimuli, and biocompatibility. Here we show that complex tunable microlasers emitting structured light can be generated from self-assembled topological LC superstructures containing topological defects inserted into a thin Fabry–Pérot microcavity. The topology and geometry of the LC superstructure determine the structuring of the emitted light by providing complex three-dimensionally varying optical axis and order parameter singularities, also affecting the topology of the light polarization. The microlaser can be switched between modes by an electric field, and its wavelength can be tuned with temperature. The proposed soft matter microlaser approach opens directions in soft matter photonics research, where structured light with specifically tailored intensity and polarization fields could be designed and implemented.
Bibliographic Details
http://www.scopus.com/inward/record.url?partnerID=HzOxMe3b&scp=85120861609&origin=inward; http://dx.doi.org/10.1073/pnas.2110839118; http://www.ncbi.nlm.nih.gov/pubmed/34853167; https://pnas.org/doi/full/10.1073/pnas.2110839118; https://dx.doi.org/10.1073/pnas.2110839118; https://www.pnas.org/content/118/49/e2110839118
Proceedings of the National Academy of Sciences
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