4.6 Article

Chirality sensing employing parity-time-symmetric and other resonant gain-loss optical systems

期刊

PHYSICAL REVIEW B
卷 105, 期 17, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.105.174112

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资金

  1. Hellenic Foundation for Research and Innovation (HFRI)
  2. General Secretariat for Research and Technology, under the HFRI Ph.D. Fellowship grant [4820]
  3. EU-Horizon2020 FET project Ultrachiral [FETOPEN-737071]
  4. Visorsurf

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This study investigates the potential of gain materials and combined gain-loss media for enhancing molecular chirality detection. The results demonstrate that the combination of a thin chiral layer with a gain-loss bilayer can significantly enhance circular dichroism (CD) response and dissymmetry factor g. The most pronounced enhancements are achieved with a parity-time (PT) symmetric gain-loss bilayer, and deviations from exact PT symmetry lead to moderate changes in CD and g response.
Molecular chirality detection and enantiomer discrimination are very important issues for many areas of science and technology, prompting intensive investigations via optical methods. However, these methods are hindered by the intrinsically weak nature of chiro-optical signals. Here, we investigate and demonstrate the potential of gain materials and of combined gain-loss mediato enhance these signals. Specifically, we show that the proper combination of a thin chiral layer with a gain-loss bilayer can lead to large enhancements of both the circular dichroism (CD) response and the dissymmetry factor g compared with the chiral layer alone. The most pronounced enhancements are obtained in the case of a parity-time (PT) symmetric gain-loss bilayer, while deviations from the exact PT symmetry lead to only moderate changes of the CD and g response, demonstrating also the possibility of tuning the system response by tuning the gain layer properties. In the case of PT-symmetric gain-loss bilayers, we found that the largest CD enhancement is obtained at the system lasing threshold, while the g enhancements are at the anisotropic transmission resonances of the systems. Our results clearly demonstrate the potential of gain materials in chirality detection. Moreover, our gain-involving approach can be applied in conjunction with most of the nanophotonics/nanostructures-based approaches that have already been proposed for chirality sensing, further enhancing the performance/output of both approaches.

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