50
S. Droulias and L. Bougas
31. Y. Zhao, A.N. Askarpour, L. Sun, J. Shi, X. Li, A. Alù, Chirality detection of enantiomers
using twisted optical metamaterials. Nat. Commun. 8, 14180 (2017)
32. E. Mohammadi, K.L. Tsakmakidis, A.N. Askarpour, P. Dehkhoda, A. Tavakoli, H. Altug,
Nanophotonic platforms for enhanced chiral sensing. ACS Photonics 5(7), 2669–2675 (2018).
https://doi.org/10.1021/acsphotonics.8b00270
33. 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(1), 43–49 (2019). https://doi.org/10.1021/acsphotonics.8b01365
34. N.A. Abdulrahman, Z. Fan, T. Tonooka, S.M. Kelly, N. Gadegaard, E. Hendry, A.O. Govorov,
M. Kadodwala, Induced chirality through electromagnetic coupling between chiral molecular
layers and plasmonic nanostructures. Nano Lett. 12(2), 977–983 (2012). https://doi.org/10.
1021/nl204055r
35. C. Kelly, L. Khosravi Khorashad, N. Gadegaard, L.D. Barron, A.O. Govorov, A.S. Karimullah,
M. Kadodwala, Controlling metamaterial transparency with superchiral fields. ACS Photonics
5(2), 535–543 (2018).https://doi.org/10.1021/acsphotonics.7b01071
36. J. García-Guirado, M. Svedendahl, J. Puigdollers, R. Quidant, Enhanced chiral sensing with
dielectric nanoresonators. Nano Lett. 20(1), 585–591 (2020). https://doi.org/10.1021/acs.
nanolett.9b04334. PMID: 31851826
37. S. Droulias, Chiral sensing with achiral isotropic metasurfaces. Phys. Rev. B 102,
075119 (2020). https://doi.org/10.1103/PhysRevB.102.075119, https://link.aps.org/doi/10.
1103/PhysRevB.102.075119
38. H.H. Nguyen, J. Park, S. Kang, M. Kim, Surface plasmon resonance: a versatile technique for biosensor applications. Sensors 15(5), 10481–10510 (2015). https://doi.org/10.3390/
s150510481
39. R.B.M. Schasfoort (ed.), Handbook of Surface Plasmon Resonance (The Royal Society of
Chemistry, London, 2017). https://doi.org/10.1039/9781788010283
40. E. Kretschmann, Decay of non radiative surface plasmons into light on rough silver
films. comparison of experimental and theoretical results. Opt. Commun. 6(2), 185–
187 (1972). https://doi.org/10.1016/0030-4018(72)90224-6, http://www.sciencedirect.com/
science/article/pii/0030401872902246
41. H. Raether, Surface Plasmons on Smooth and Rough Surfaces and on Gratings. Springer Tracts
in Modern Physics (Springer, Berlin, 1988). https://doi.org/10.1007/BFb0048317, https://
www.springer.com/gp/book/9783662151242
42. S.A. Maier, Plasmonics: Fundamentals and Applications (Springer US, New York, 2007).
https://doi.org/10.1007/0-387-37825-1, https://www.springer.com/gp/book/9780387331508
43. L. Novotny, B. Hecht, Principles of Nano-Optics, 2 edn. (Cambridge University Press,
Cambridge, 2012). https://doi.org/10.1017/CBO9780511794193, https://www.cambridge.org/
core/books/principles-of-nanooptics/E884E5F4AA76DF179A1ECFDF77436452
44. E.N. Economou, Surface plasmons in thin films. Phys. Rev. 182(2), 539–554 (1969). https://
doi.org/10.1103/PhysRev.182.539
45. J.J. Burke, G.I. Stegeman, T. Tamir, Surface-polariton-like waves guided by thin, lossy metal
films. Phys. Rev. B 33(8), 5186–5201 (1986). https://doi.org/10.1103/PhysRevB.33.5186
46. P. Berini, Plasmon-polariton waves guided by thin lossy metal films of finite width: bound
modes of symmetric structures. Phys. Rev. B 61(15), 10484–10503 (2000). https://doi.org/10.
1103/PhysRevB.61.10484
47. W.L. Barnes, A. Dereux, T.W. Ebbesen, Surface plasmon subwavelength optics. Nature
424(6950), 824–830 (2003). https://doi.org/10.1038/nature01937
48. W.L. Barnes, Surface plasmon-polariton length scales: a route to sub-wavelength optics. J. Opt.
A: Pure Appl. Opt. 8(4), S87–S93 (2006). https://doi.org/10.1088/1464-4258/8/4/S06
49. J.M. Pitarke, V.M. Silkin, E.V. Chulkov, P.M. Echenique, Theory of surface plasmons and
surface-plasmon polaritons. Rep. Prog. Phys. 70(1), 1–87 (2006). https://doi.org/10.1088/
0034-4885/70/1/R01
50. B. Dastmalchi, P. Tassin, T. Koschny, C.M. Soukoulis, A new perspective on plasmonics:
confinement and propagation length of surface plasmons for different materials and geometries.
Adv. Opt. Mater. 4(1), 177–184 (2016). https://doi.org/10.1002/adom.201500446
S. Droulias and L. Bougas
31. Y. Zhao, A.N. Askarpour, L. Sun, J. Shi, X. Li, A. Alù, Chirality detection of enantiomers
using twisted optical metamaterials. Nat. Commun. 8, 14180 (2017)
32. E. Mohammadi, K.L. Tsakmakidis, A.N. Askarpour, P. Dehkhoda, A. Tavakoli, H. Altug,
Nanophotonic platforms for enhanced chiral sensing. ACS Photonics 5(7), 2669–2675 (2018).
https://doi.org/10.1021/acsphotonics.8b00270
33. 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(1), 43–49 (2019). https://doi.org/10.1021/acsphotonics.8b01365
34. N.A. Abdulrahman, Z. Fan, T. Tonooka, S.M. Kelly, N. Gadegaard, E. Hendry, A.O. Govorov,
M. Kadodwala, Induced chirality through electromagnetic coupling between chiral molecular
layers and plasmonic nanostructures. Nano Lett. 12(2), 977–983 (2012). https://doi.org/10.
1021/nl204055r
35. C. Kelly, L. Khosravi Khorashad, N. Gadegaard, L.D. Barron, A.O. Govorov, A.S. Karimullah,
M. Kadodwala, Controlling metamaterial transparency with superchiral fields. ACS Photonics
5(2), 535–543 (2018).https://doi.org/10.1021/acsphotonics.7b01071
36. J. García-Guirado, M. Svedendahl, J. Puigdollers, R. Quidant, Enhanced chiral sensing with
dielectric nanoresonators. Nano Lett. 20(1), 585–591 (2020). https://doi.org/10.1021/acs.
nanolett.9b04334. PMID: 31851826
37. S. Droulias, Chiral sensing with achiral isotropic metasurfaces. Phys. Rev. B 102,
075119 (2020). https://doi.org/10.1103/PhysRevB.102.075119, https://link.aps.org/doi/10.
1103/PhysRevB.102.075119
38. H.H. Nguyen, J. Park, S. Kang, M. Kim, Surface plasmon resonance: a versatile technique for biosensor applications. Sensors 15(5), 10481–10510 (2015). https://doi.org/10.3390/
s150510481
39. R.B.M. Schasfoort (ed.), Handbook of Surface Plasmon Resonance (The Royal Society of
Chemistry, London, 2017). https://doi.org/10.1039/9781788010283
40. E. Kretschmann, Decay of non radiative surface plasmons into light on rough silver
films. comparison of experimental and theoretical results. Opt. Commun. 6(2), 185–
187 (1972). https://doi.org/10.1016/0030-4018(72)90224-6, http://www.sciencedirect.com/
science/article/pii/0030401872902246
41. H. Raether, Surface Plasmons on Smooth and Rough Surfaces and on Gratings. Springer Tracts
in Modern Physics (Springer, Berlin, 1988). https://doi.org/10.1007/BFb0048317, https://
www.springer.com/gp/book/9783662151242
42. S.A. Maier, Plasmonics: Fundamentals and Applications (Springer US, New York, 2007).
https://doi.org/10.1007/0-387-37825-1, https://www.springer.com/gp/book/9780387331508
43. L. Novotny, B. Hecht, Principles of Nano-Optics, 2 edn. (Cambridge University Press,
Cambridge, 2012). https://doi.org/10.1017/CBO9780511794193, https://www.cambridge.org/
core/books/principles-of-nanooptics/E884E5F4AA76DF179A1ECFDF77436452
44. E.N. Economou, Surface plasmons in thin films. Phys. Rev. 182(2), 539–554 (1969). https://
doi.org/10.1103/PhysRev.182.539
45. J.J. Burke, G.I. Stegeman, T. Tamir, Surface-polariton-like waves guided by thin, lossy metal
films. Phys. Rev. B 33(8), 5186–5201 (1986). https://doi.org/10.1103/PhysRevB.33.5186
46. P. Berini, Plasmon-polariton waves guided by thin lossy metal films of finite width: bound
modes of symmetric structures. Phys. Rev. B 61(15), 10484–10503 (2000). https://doi.org/10.
1103/PhysRevB.61.10484
47. W.L. Barnes, A. Dereux, T.W. Ebbesen, Surface plasmon subwavelength optics. Nature
424(6950), 824–830 (2003). https://doi.org/10.1038/nature01937
48. W.L. Barnes, Surface plasmon-polariton length scales: a route to sub-wavelength optics. J. Opt.
A: Pure Appl. Opt. 8(4), S87–S93 (2006). https://doi.org/10.1088/1464-4258/8/4/S06
49. J.M. Pitarke, V.M. Silkin, E.V. Chulkov, P.M. Echenique, Theory of surface plasmons and
surface-plasmon polaritons. Rep. Prog. Phys. 70(1), 1–87 (2006). https://doi.org/10.1088/
0034-4885/70/1/R01
50. B. Dastmalchi, P. Tassin, T. Koschny, C.M. Soukoulis, A new perspective on plasmonics:
confinement and propagation length of surface plasmons for different materials and geometries.
Adv. Opt. Mater. 4(1), 177–184 (2016). https://doi.org/10.1002/adom.201500446
