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scattering probes for cancer cell imaging. Nanotechnology 21(5), 055704 (2010). https://doi.
org/10.1088/0957-4484/21/5/055704
17. R. Ankri et al., Intercoupling surface plasmon resonance and diffusion reflection measurements
for real-time cancer detection. J. Biophotonics 6(2), 188–196 (2013). https://doi.org/10.1002/
jbio.201200016
18. T. Ilovitsh et al., Cellular imaging using temporally flickering nanoparticles. Sci. Rep. 5,
Macmillan Publishers Limited. All rights reserved (2015)
19. T. Ilovitsh et al., Cellular superresolved imaging of multiple markers using temporally flickering
nanoparticles. Sci. Rep. 5, 10965. Nature Publishing Group (2015). https://doi.org/10.1038/
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20. Y. Danan et al., Decoupling and tuning the light absorption and scattering resonances in metallic
composite nanostructures. Opt. Express 23(22), 29089 (2015). https://doi.org/10.1364/OE.23.
029089
21. Y.H. Fu et al., Directional visible light scattering by silicon nanoparticles. Nat. Commun.
4, 1527. Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights
Reserved (2013). https://doi.org/10.1038/ncomms2538
22. S. Amoruso et al., Generation of silicon nanoparticles via femtosecond laser ablation in vacuum.
Appl. Phys. Lett. 84(22), 4502–4504 (2004). https://doi.org/10.1063/1.1757014
23. J.-H. Park et al., Biodegradable luminescent porous silicon nanoparticles for in vivo applications. Nat. Mater. 8(April), 331–336 (2009). https://doi.org/10.1038/nmat2398
24. R. Soref, B. Bennett, Electrooptical effects in silicon. IEEE J. Quantum Electron. 23(1),
123–129 (1987). https://doi.org/10.1109/JQE.1987.1073206
25. B.T. Draine, P.J. Flatau, Discrete-dipole approximation for scattering calculations. J. Opt. Soc.
Am. A 11(4), 1491 (1994). https://doi.org/10.1364/JOSAA.11.001491
26. B.T. Draine, P.J. Flatau, User guide for the discrete dipole approximation code DDSCAT 7.3.
Comput. Phys. Galaxy Astrophys. Mesoscale Nanoscale Phys. Opt. 102 (2013)
27. K. Imura, T. Nagahara, H. Okamoto, Photoluminescence from gold nanoplates induced by
near-field two-photon absorption. Appl. Phys. Lett. 88(2), 1–3 (2006). https://doi.org/10.1063/
1.2161568
28. Y. Danan, T. Ilovitsh, Y. Ramon, D. Malka, D. Liu, Z. Zalevsky, Silicon coated gold nanoparticles nanoscopy. J. Nanophotonics 10(3), 036015-036015 (2016)
29. M. Abb et al., All-optical control of a single plasmonic nanoantenna-ITO hybrid. Nano Lett.
11(6), 2457–2463 (2011). https://doi.org/10.1021/nl200901w
30. G. Georgiou et al., Photo-generated THz antennas. Sci. Rep. 4, 3584 (2014). https://doi.org/
10.1038/srep03584
31. A. Meiri, A. Shahmoon, Z. Zalevsky, Optically reconfigurable structures based on surface
enhanced Raman scattering in nanorods. Microelectron. Eng. 111, 251–255 (2013)
32. H. Pinhas, O. Wagner, Y. Danan, M. Danino, Z. Zalevsky, M. Sinvani, Plasma dispersion effect
based super-resolved imaging in silicon. Opt. Exp. 26, 25370–25380 (2018)
33. H. Pinhas, L. Bidani, O. Baharav, M. Sinvani, M. Danino, Z. Zalevsky, All optical modulator
based on silicon resonator, in SPIE, vol. 9609 (2015), pp. 96090L–96090L–7
34. H. Pinhas, Y. Danan, M. Sinvani, M. Danino, Z. Zalevsky, Experimental characterization
towards an in-fibre integrated silicon slab based all-optical modulator. J. Eur. Opt. Soc. Publ.
13(1), 3 (2017)
35. R. Aharoni, M. Sinvani, O. Baharav, M. Azoulai, Z. Zalevsky, experimental characterization
of photonic fiber-integrated modulator. Open Opt. J. 5(1), 40–45 (2011)
36. R. Aharoni, O. Baharav, L. Bidani, M. Sinvani, D. Elbaz, Z. Zalevsky, All-optical silicon
simplified passive modulation. J. Eur. Opt. Soc. Rapid Publ. 7(12029) (2012)
37. M.S. Tyagi, R. Van Overstraeten, Minoriy carrier recombination in heavily-doped silicon.
Solid-State Electron. 26(6), 577–597 (1983)
38. D. Alamo, R.M. Swanson, Modelling of minority-carriers transport in heavily doped silicon
emitters. Solid-State Electron. 30 (1987)
H. Pinhas et al.
16. Q. Zhan et al., A study of mesoporous silica-encapsulated gold nanorods as enhanced light
scattering probes for cancer cell imaging. Nanotechnology 21(5), 055704 (2010). https://doi.
org/10.1088/0957-4484/21/5/055704
17. R. Ankri et al., Intercoupling surface plasmon resonance and diffusion reflection measurements
for real-time cancer detection. J. Biophotonics 6(2), 188–196 (2013). https://doi.org/10.1002/
jbio.201200016
18. T. Ilovitsh et al., Cellular imaging using temporally flickering nanoparticles. Sci. Rep. 5,
Macmillan Publishers Limited. All rights reserved (2015)
19. T. Ilovitsh et al., Cellular superresolved imaging of multiple markers using temporally flickering
nanoparticles. Sci. Rep. 5, 10965. Nature Publishing Group (2015). https://doi.org/10.1038/
srep10965
20. Y. Danan et al., Decoupling and tuning the light absorption and scattering resonances in metallic
composite nanostructures. Opt. Express 23(22), 29089 (2015). https://doi.org/10.1364/OE.23.
029089
21. Y.H. Fu et al., Directional visible light scattering by silicon nanoparticles. Nat. Commun.
4, 1527. Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights
Reserved (2013). https://doi.org/10.1038/ncomms2538
22. S. Amoruso et al., Generation of silicon nanoparticles via femtosecond laser ablation in vacuum.
Appl. Phys. Lett. 84(22), 4502–4504 (2004). https://doi.org/10.1063/1.1757014
23. J.-H. Park et al., Biodegradable luminescent porous silicon nanoparticles for in vivo applications. Nat. Mater. 8(April), 331–336 (2009). https://doi.org/10.1038/nmat2398
24. R. Soref, B. Bennett, Electrooptical effects in silicon. IEEE J. Quantum Electron. 23(1),
123–129 (1987). https://doi.org/10.1109/JQE.1987.1073206
25. B.T. Draine, P.J. Flatau, Discrete-dipole approximation for scattering calculations. J. Opt. Soc.
Am. A 11(4), 1491 (1994). https://doi.org/10.1364/JOSAA.11.001491
26. B.T. Draine, P.J. Flatau, User guide for the discrete dipole approximation code DDSCAT 7.3.
Comput. Phys. Galaxy Astrophys. Mesoscale Nanoscale Phys. Opt. 102 (2013)
27. K. Imura, T. Nagahara, H. Okamoto, Photoluminescence from gold nanoplates induced by
near-field two-photon absorption. Appl. Phys. Lett. 88(2), 1–3 (2006). https://doi.org/10.1063/
1.2161568
28. Y. Danan, T. Ilovitsh, Y. Ramon, D. Malka, D. Liu, Z. Zalevsky, Silicon coated gold nanoparticles nanoscopy. J. Nanophotonics 10(3), 036015-036015 (2016)
29. M. Abb et al., All-optical control of a single plasmonic nanoantenna-ITO hybrid. Nano Lett.
11(6), 2457–2463 (2011). https://doi.org/10.1021/nl200901w
30. G. Georgiou et al., Photo-generated THz antennas. Sci. Rep. 4, 3584 (2014). https://doi.org/
10.1038/srep03584
31. A. Meiri, A. Shahmoon, Z. Zalevsky, Optically reconfigurable structures based on surface
enhanced Raman scattering in nanorods. Microelectron. Eng. 111, 251–255 (2013)
32. H. Pinhas, O. Wagner, Y. Danan, M. Danino, Z. Zalevsky, M. Sinvani, Plasma dispersion effect
based super-resolved imaging in silicon. Opt. Exp. 26, 25370–25380 (2018)
33. H. Pinhas, L. Bidani, O. Baharav, M. Sinvani, M. Danino, Z. Zalevsky, All optical modulator
based on silicon resonator, in SPIE, vol. 9609 (2015), pp. 96090L–96090L–7
34. H. Pinhas, Y. Danan, M. Sinvani, M. Danino, Z. Zalevsky, Experimental characterization
towards an in-fibre integrated silicon slab based all-optical modulator. J. Eur. Opt. Soc. Publ.
13(1), 3 (2017)
35. R. Aharoni, M. Sinvani, O. Baharav, M. Azoulai, Z. Zalevsky, experimental characterization
of photonic fiber-integrated modulator. Open Opt. J. 5(1), 40–45 (2011)
36. R. Aharoni, O. Baharav, L. Bidani, M. Sinvani, D. Elbaz, Z. Zalevsky, All-optical silicon
simplified passive modulation. J. Eur. Opt. Soc. Rapid Publ. 7(12029) (2012)
37. M.S. Tyagi, R. Van Overstraeten, Minoriy carrier recombination in heavily-doped silicon.
Solid-State Electron. 26(6), 577–597 (1983)
38. D. Alamo, R.M. Swanson, Modelling of minority-carriers transport in heavily doped silicon
emitters. Solid-State Electron. 30 (1987)
