6 Advanced Function Control of Photochemical Reactions …
113
17. Hertzog M, Wang M, Mony J, Börjesson K (2019) Strong light-matter interactions: a new
direction within chemistry. Chem Soc Rev 48:937–961
18. Okamoto H, Imura K (2013) Visualizing the optical field structures in metal nanostructures. J
Phys Chem Lett 4:2230–2241
19. Neuman T, Alonso-González P, Garcia-Etxarri A, Schnell M, Hillenbrand R, Aizpurua J (2015)
Mapping the near fields of plasmonic nanoantennas by scattering-type scanning near-field
optical microscopy. Laser Photonics Rev 9:637–649
20. Barnes WL, Dereux A, Ebbesen TW (2003) Surface plasmon subwavelength optics. Nature
424:824–830
21. Schuller JA, Barnard ES, Cai W, Jun YC, White JS, Brongersma ML (2010) Plasmonics for
extreme light concentration and manipulation. Nat Mater 9:193–204
22. Novotny L, van Hulst N (2011) Antennas for light. Nature Photon 5:83–90
23. Giannini V, Fernández-Domínguez AI, Heck SC, Maier SA (2011) Plasmonic nano-antennas:
fundamentals and their use in controlling the radiative properties of nanoemitters. Chem Rev
111:3888–3912
24. Imura K, Nagahara T, Okamoto H (2004) Plasmon mode imaging of single gold nanorods. J
Am Chem Soc 126:12730–12731
25. Imura K, Nagahara T, Okamoto H (2005) Near-field optical imaging of plasmon modes in gold
nanorods. J Chem Phys 122:154701
26. Imura K, Nagahara T, Okamoto H (2005) Near-field two-photon-induced photoluminescence
from single gold nanorods and imaging of plasmon modes. J Phys Chem B 109:13214–13220
27. Piatkowski L, Accanto N, van Hulst NF (2016) Ultrafast meets ultrasmall: controlling
nanoantennas and molecules. ACS Photon 3:1401–1414
28. D˛ abrowski M, Dai Y, Petek H (2017) Ultrafast microscopy: imaging light with photoelectrons
on the nano-femto scale. J Phys Chem Lett 8:4446–4455
29. Beane G, Devkota T, Brown BS, Hartland GV (2019) Ultrafast measurements of the dynamics
of single nanostructures: a review. Rep Prog Phys 82:016401
30. Imaeda K, Imura K (2013) Optical control of plasmonic fields by phase-modulated pulse
excitations. Opt Express 21:27481–27489
31. Imaeda K, Imura K (2016) Raman activity and dynamics of plasmons on a rough gold film
studied by ultrafast scanning near-field optical microscopy. In: Ozaki Y, Schatz GC, Graham
D, Itoh T (eds) Frontiers of plasmon enhanced spectroscopy. ACS symposium series 1246, vol
2. pp 121–137
32. Imaeda K, Imura K (2016) Dye-assisted visualization of plasmon modes excited in single gold
nanoplates. Chem Phys Lett 646:179–184
33. Mizobata H, Hasegawa S, Imura K (2018) Development of aperture-type near-field re-flection
spectroscopy and its application to single silver nanoplates. J Phys Chem C 121:11733–11738
34. Anger P, Bharadwaj P, Novotny L (2006) Enhancement and quenching of single-molecule
fluorescence. Phys Rev Lett 96:113002
35. Kühn S, Håkanson U, Rogobete L, Sandoghdar V (2006) Enhancement of single-molecule
fluorescence using a gold nanoparticle as an optical nanoantenna. Phys Rev Lett 97:017402
36. Li J-F, Li C-Y, Aroca RF (2017) Plasmon-enhanced fluorescence spectroscopy. Chem Soc Rev
46:3962–3979
37. Smith RJ, Somekh MG, Sharples SD, Pitter MC, Harrison I, Rossignol C (2008) Parallel
detection of low modulation depth signals: application to picosecond ultrasonics. Meas Sci
Technol 19:055301
38. Smith RJ, Light RA, Sharples SD, Johnston NS, Pitter MC, Somekh MG (2010) Multichannel, time-resolved picosecond laser ultrasound imaging and spectroscopy with custom
complementary metal-oxide-semiconductor detector. Rev Sci Instrum 81:024901
39. Smith RJ, Light RA, Johnston N, Sharples S, Pitter MC, Somekh MG (2010) Parallel detection
in laser ultrasonics. J Phys: Conf Ser 214:012006
40. Born M, Wolf E (2002) Principle of optics. Cambridge Univ Press, Cambridge
41. Boudarham G, Kociak M (2012) Modal decompositions of the local electromagnetic density
of states and spatially resolved electron energy loss probability in terms of geometric modes.
Phys Rev B 85:245447
113
17. Hertzog M, Wang M, Mony J, Börjesson K (2019) Strong light-matter interactions: a new
direction within chemistry. Chem Soc Rev 48:937–961
18. Okamoto H, Imura K (2013) Visualizing the optical field structures in metal nanostructures. J
Phys Chem Lett 4:2230–2241
19. Neuman T, Alonso-González P, Garcia-Etxarri A, Schnell M, Hillenbrand R, Aizpurua J (2015)
Mapping the near fields of plasmonic nanoantennas by scattering-type scanning near-field
optical microscopy. Laser Photonics Rev 9:637–649
20. Barnes WL, Dereux A, Ebbesen TW (2003) Surface plasmon subwavelength optics. Nature
424:824–830
21. Schuller JA, Barnard ES, Cai W, Jun YC, White JS, Brongersma ML (2010) Plasmonics for
extreme light concentration and manipulation. Nat Mater 9:193–204
22. Novotny L, van Hulst N (2011) Antennas for light. Nature Photon 5:83–90
23. Giannini V, Fernández-Domínguez AI, Heck SC, Maier SA (2011) Plasmonic nano-antennas:
fundamentals and their use in controlling the radiative properties of nanoemitters. Chem Rev
111:3888–3912
24. Imura K, Nagahara T, Okamoto H (2004) Plasmon mode imaging of single gold nanorods. J
Am Chem Soc 126:12730–12731
25. Imura K, Nagahara T, Okamoto H (2005) Near-field optical imaging of plasmon modes in gold
nanorods. J Chem Phys 122:154701
26. Imura K, Nagahara T, Okamoto H (2005) Near-field two-photon-induced photoluminescence
from single gold nanorods and imaging of plasmon modes. J Phys Chem B 109:13214–13220
27. Piatkowski L, Accanto N, van Hulst NF (2016) Ultrafast meets ultrasmall: controlling
nanoantennas and molecules. ACS Photon 3:1401–1414
28. D˛ abrowski M, Dai Y, Petek H (2017) Ultrafast microscopy: imaging light with photoelectrons
on the nano-femto scale. J Phys Chem Lett 8:4446–4455
29. Beane G, Devkota T, Brown BS, Hartland GV (2019) Ultrafast measurements of the dynamics
of single nanostructures: a review. Rep Prog Phys 82:016401
30. Imaeda K, Imura K (2013) Optical control of plasmonic fields by phase-modulated pulse
excitations. Opt Express 21:27481–27489
31. Imaeda K, Imura K (2016) Raman activity and dynamics of plasmons on a rough gold film
studied by ultrafast scanning near-field optical microscopy. In: Ozaki Y, Schatz GC, Graham
D, Itoh T (eds) Frontiers of plasmon enhanced spectroscopy. ACS symposium series 1246, vol
2. pp 121–137
32. Imaeda K, Imura K (2016) Dye-assisted visualization of plasmon modes excited in single gold
nanoplates. Chem Phys Lett 646:179–184
33. Mizobata H, Hasegawa S, Imura K (2018) Development of aperture-type near-field re-flection
spectroscopy and its application to single silver nanoplates. J Phys Chem C 121:11733–11738
34. Anger P, Bharadwaj P, Novotny L (2006) Enhancement and quenching of single-molecule
fluorescence. Phys Rev Lett 96:113002
35. Kühn S, Håkanson U, Rogobete L, Sandoghdar V (2006) Enhancement of single-molecule
fluorescence using a gold nanoparticle as an optical nanoantenna. Phys Rev Lett 97:017402
36. Li J-F, Li C-Y, Aroca RF (2017) Plasmon-enhanced fluorescence spectroscopy. Chem Soc Rev
46:3962–3979
37. Smith RJ, Somekh MG, Sharples SD, Pitter MC, Harrison I, Rossignol C (2008) Parallel
detection of low modulation depth signals: application to picosecond ultrasonics. Meas Sci
Technol 19:055301
38. Smith RJ, Light RA, Sharples SD, Johnston NS, Pitter MC, Somekh MG (2010) Multichannel, time-resolved picosecond laser ultrasound imaging and spectroscopy with custom
complementary metal-oxide-semiconductor detector. Rev Sci Instrum 81:024901
39. Smith RJ, Light RA, Johnston N, Sharples S, Pitter MC, Somekh MG (2010) Parallel detection
in laser ultrasonics. J Phys: Conf Ser 214:012006
40. Born M, Wolf E (2002) Principle of optics. Cambridge Univ Press, Cambridge
41. Boudarham G, Kociak M (2012) Modal decompositions of the local electromagnetic density
of states and spatially resolved electron energy loss probability in terms of geometric modes.
Phys Rev B 85:245447
