13 Theoretical Generalization of the Optical Chirality to Arbitrary Optical Media
351
regard, it is quite possible that a complete approach relying upon the role played by
the material absorption losses may shed some light on the solution of this and many
other intriguing questions.
References
1. M. Schäferling, Chiral Nanophotonics: Chiral Optical Properties of Plasmonic Systems
(Springer, Berlin, 2017)
2. S. Boriskina, N.I. Zheludev, Singular and Chiral Nanoplasmonics (CRC Press, Boca Raton,
FL, 2014)
3. M. Schäferling, D. Dregely, M. Hentschel, H. Giessen, Tailoring enhanced optical chirality:
Design principles for chiral plasmonic nanostructures. Phys. Rev. X 2, 031010 (2012). https://
doi.org/10.1103/PhysRevX.2.031010
4. N. Meinzer, E. Hendry, W.L. Barnes, Probing the chiral nature of electromagnetic fields surrounding plasmonic nanostructures. Phys. Rev. B 88, 041407 (2013). https://doi.org/10.1103/
PhysRevB.88.041407
5. V.K. Valev, J.J. Baumberg, C. Sibilia, T. Verbiest, Chirality and chiroptical effects in plasmonic
nanostructures: Fundamentals, recent progress, and outlook. Adv. Mater. 25, 2517 (2013).
https://doi.org/10.1002/adma.201205178
6. M.L. Nesterov, X. Yin, M. Schäferling, H. Giessen, T. Weiss, The role of plasmon-generated
near fields for enhanced circular dichroism spectroscopy. ACS Photon. 3, 578 (2016). https://
doi.org/10.1021/acsphotonics.5b00637
7. J.T. Collins, C. Kuppe, D.C. Hooper, C. Sibilia, M. Centini, V.K. Valev, Chirality and chiroptical
effects in metal nanostructures: Fundamentals and current trends. Adv. Opt. Mater. 5, 1700182
(2017). https://doi.org/10.1002/adom.201700182
8. Y. Luo, C. Chi, M. Jiang, R. Li, S. Zu, Y. Li, Z. Fang, Plasmonic chiral nanostructures: Chiroptical effects and applications. Adv. Opt. Mater. 5, 1700040 (2017). https://doi.org/10.1002/
adom.201700040
9. M. Hentschel, M. Schäferling, X. Duan, H. Giessen, N. Liu, Chiral Plasmonics. Sci. Adv. 3,
e1602735 (2017). https://doi.org/10.1126/sciadv.1602735
10. A. García-Etxarri, J.A. Dionne, Surface-enhanced circular dichroism spectroscopy mediated by
nonchiral nanoantennas. Phys. Rev. B 87, 235409 (2013). https://doi.org/10.1103/PhysRevB.
87.235409
11. E. Mohammadi, K.L. Tsakmakidis, A.N. Askarpour, P. Dehkhoda, A. Tavakoli, H. Altug,
Nanophotonic platforms for enhanced chiral sensing. ACS Photonics 5, 2669 (2018). https://
doi.org/10.1021/acsphotonics.8b00270
12. G. Pellegrini, M. Finazzi, M. Celebrano, L. Duò, P. Biagioni, Chiral surface waves for enhanced
circular dichroism. Phys. Rev. B 95, 241402 (2017). https://doi.org/10.1103/PhysRevB.95.
241402
13. M.L. Solomon, J. Hu, M. Lawrence, A. García-Etxarri, J.A. Dionne, Enantiospecific optical
enhancement of chiral sensing and separation with dielectric metasurfaces. ACS Photonics 6,
43 (2019). https://doi.org/10.1021/acsphotonics.8b01365
14. F. Graf, J. Feis, X. Garcia-Santiago, M. Wegener, C. Rockstuhl, I. Fernandez-Corbaton, Achiral,
helicity preserving, and resonant structures for enhanced sensing of chiral molecules. ACS
Photonics 6, 482 (2019). https://doi.org/10.1021/acsphotonics.8b01454
15. E. Mohammadi, A. Tavakoli, P. Dehkhoda, Y. Jahani, K.L. Tsakmakidis, A. Tittl, H. Altug,
Accessible superchiral near-fields driven by tailored electric and magnetic resonances in alldielectric nanostructures. ACS Photonics 6, 1939 (2019). https://doi.org/10.1021/acsphotonics.
8b01767
16. X. Zhao, B.M. Reinhard, Switchable chiroptical hot-spots in silicon nanodisk dimers. ACS
Photonics 6, 1981 (2019). https://doi.org/10.1021/acsphotonics.9b00388
351
regard, it is quite possible that a complete approach relying upon the role played by
the material absorption losses may shed some light on the solution of this and many
other intriguing questions.
References
1. M. Schäferling, Chiral Nanophotonics: Chiral Optical Properties of Plasmonic Systems
(Springer, Berlin, 2017)
2. S. Boriskina, N.I. Zheludev, Singular and Chiral Nanoplasmonics (CRC Press, Boca Raton,
FL, 2014)
3. M. Schäferling, D. Dregely, M. Hentschel, H. Giessen, Tailoring enhanced optical chirality:
Design principles for chiral plasmonic nanostructures. Phys. Rev. X 2, 031010 (2012). https://
doi.org/10.1103/PhysRevX.2.031010
4. N. Meinzer, E. Hendry, W.L. Barnes, Probing the chiral nature of electromagnetic fields surrounding plasmonic nanostructures. Phys. Rev. B 88, 041407 (2013). https://doi.org/10.1103/
PhysRevB.88.041407
5. V.K. Valev, J.J. Baumberg, C. Sibilia, T. Verbiest, Chirality and chiroptical effects in plasmonic
nanostructures: Fundamentals, recent progress, and outlook. Adv. Mater. 25, 2517 (2013).
https://doi.org/10.1002/adma.201205178
6. M.L. Nesterov, X. Yin, M. Schäferling, H. Giessen, T. Weiss, The role of plasmon-generated
near fields for enhanced circular dichroism spectroscopy. ACS Photon. 3, 578 (2016). https://
doi.org/10.1021/acsphotonics.5b00637
7. J.T. Collins, C. Kuppe, D.C. Hooper, C. Sibilia, M. Centini, V.K. Valev, Chirality and chiroptical
effects in metal nanostructures: Fundamentals and current trends. Adv. Opt. Mater. 5, 1700182
(2017). https://doi.org/10.1002/adom.201700182
8. Y. Luo, C. Chi, M. Jiang, R. Li, S. Zu, Y. Li, Z. Fang, Plasmonic chiral nanostructures: Chiroptical effects and applications. Adv. Opt. Mater. 5, 1700040 (2017). https://doi.org/10.1002/
adom.201700040
9. M. Hentschel, M. Schäferling, X. Duan, H. Giessen, N. Liu, Chiral Plasmonics. Sci. Adv. 3,
e1602735 (2017). https://doi.org/10.1126/sciadv.1602735
10. A. García-Etxarri, J.A. Dionne, Surface-enhanced circular dichroism spectroscopy mediated by
nonchiral nanoantennas. Phys. Rev. B 87, 235409 (2013). https://doi.org/10.1103/PhysRevB.
87.235409
11. E. Mohammadi, K.L. Tsakmakidis, A.N. Askarpour, P. Dehkhoda, A. Tavakoli, H. Altug,
Nanophotonic platforms for enhanced chiral sensing. ACS Photonics 5, 2669 (2018). https://
doi.org/10.1021/acsphotonics.8b00270
12. G. Pellegrini, M. Finazzi, M. Celebrano, L. Duò, P. Biagioni, Chiral surface waves for enhanced
circular dichroism. Phys. Rev. B 95, 241402 (2017). https://doi.org/10.1103/PhysRevB.95.
241402
13. M.L. Solomon, J. Hu, M. Lawrence, A. García-Etxarri, J.A. Dionne, Enantiospecific optical
enhancement of chiral sensing and separation with dielectric metasurfaces. ACS Photonics 6,
43 (2019). https://doi.org/10.1021/acsphotonics.8b01365
14. F. Graf, J. Feis, X. Garcia-Santiago, M. Wegener, C. Rockstuhl, I. Fernandez-Corbaton, Achiral,
helicity preserving, and resonant structures for enhanced sensing of chiral molecules. ACS
Photonics 6, 482 (2019). https://doi.org/10.1021/acsphotonics.8b01454
15. E. Mohammadi, A. Tavakoli, P. Dehkhoda, Y. Jahani, K.L. Tsakmakidis, A. Tittl, H. Altug,
Accessible superchiral near-fields driven by tailored electric and magnetic resonances in alldielectric nanostructures. ACS Photonics 6, 1939 (2019). https://doi.org/10.1021/acsphotonics.
8b01767
16. X. Zhao, B.M. Reinhard, Switchable chiroptical hot-spots in silicon nanodisk dimers. ACS
Photonics 6, 1981 (2019). https://doi.org/10.1021/acsphotonics.9b00388
