196
N. Tamai and S. Masuo
36. Naiki H, Uedao T, Wang L, Tamai N, Masuo S (2017) Multiphoton emission enhancement from
a single colloidal quantum dot using SiO 2 -coated silver nanoparticles. ACS Omega 2:728–737
37. Yuan CT, Yu P, Ko HC, Huang J, Tang J (2009) Antibunching single-photon emission and
blinking suppression of CdSe/ZnS quantum dots. ACS Nano 3:3051–3056
38. Mallek-Zouari I, Buil S, Quelin X, Mahler B, Dubertret B, Hermier JP (2010) Plasmon assisted
single photon emission of CdSe/CdS nanocrystals deposited on random gold film. Appl Phys
Lett 97:053109
39. Vion C, Spinicelli P, Coolen L, Schwob C, Frigerio JM, Hermier JP (2010) Maitre A E
(2010) Controlled modification of single colloidal CdSe/ZnS nanocrystal fluorescence through
interactions with a gold surface. Opt Express 18:7440–7455
40. Canneson D, Mallek-Zouari I, Buil S, Quelin X, Javaux C, Mahler B, Dubertret B, Hermier JP
(2011) Strong Purcell effect observed in single thick-shell CdSe/CdS nanocrystals coupled to
localized surface plasmons. Phys Rev B 84:245423
41. Leblanc SJ, McClanahan MR, Jones M, Moyer PJ (2013) Enhancement of multiphoton
emission from single CdSe quantum dots coupled to gold films. Nano Lett 13:1662–1669
42. Park YS, Ghosh Y, Chen Y, Piryatinski A, Xu P, Mack NH, Wang HL, Klimov VI, Hollingsworth
JA, Htoon H (2013) Super-poissonian statistics of photon emission from single CdSe-CdS
core-shell nanocrystals coupled to metal nanostructures. Phys Rev Lett 110:117401
43. Park YS, Ghosh Y, Xu P, Mack NH, Wang HL, Hollingsworth JA, Htoon H (2013) Singlenanocrystal photoluminescence spectroscopy studies of plasmon–multiexciton interactions at
low temperature. J Phys Chem Lett 4:1465–1470
44. Yuan CT, Wang YC, Cheng HW, Wang HS, Kuo MY, Shih MH, Tang J (2013) Modification of
fluorescence properties in single colloidal quantum dots by coupling to plasmonic gap modes.
J Phys Chem C 117:12762–12768
45. Dey S, Zhou YD, Tian XD, Jenkins JA, Chen O, Zou SL, Zhao J (2015) An Experimental
andTheoretical Mechanistic study of biexciton quantum yield enhancement in single quantum
dots near gold nanoparticles. Nanoscale 7:6851–6858
46. Wang F, Karan NS, Nguyen HM, Ghosh Y, Hollingsworth JA, Htoon H (2015) Coupling single
giant nanocrystal quantum dots to the fundamental mode of patch nanoantennas tthrough fringe
field. Sci Rep 5:14313
47. Wang F, Karan NS, Nguyen HM, Ghosh Y, Sheehan CJ, Hollingsworth JA, Htoon H (2015)
Correlated structural-optical study of single nanocrystals in a gap-bar antenna: effects of
plasmonics on excitonic recombination pathways. Nanoscale 7:9387–9393
48. Wang F, Karan NS, Nguyen HM, Mangum BD, Ghosh Y, Sheehan CJ, Hollingsworth JA,
Htoon H (2015) Quantum optical signature of plasmonically coupled nanocrystal quantum
dots. Small 11:5028–5034
49. Dey S, Zhao J (2016) Plasmonic effect on exciton and multiexciton emission of single quantum
dots. J Phys Chem Lett 7:2921–2929
50. Hoang TB, Akselrod GM, Mikkelsen MH (2016) Ultrafast room-temperature single photon
emission from quantum dots coupled to plasmonic nanocavities. Nano Lett 16:270–275
51. Dey S, Zhou Y, Sun Y, Jenkins JA, Kriz D, Suib SL, Chen O, Zou S, Zhao J (2018) Excitation
wavelength dependent photon anti-bunching/bunching from s single quantum dots near gold
nanostructures. Nanoscale 10:1038–1046
52. Mundoor H, Sheetah GH, Park S, Ackerman PJ, Smalyukh II, van de Lagemaat J (2018)
Tuning and switching a plasmonic quantum dot “sandwich” in a nematic line defect. ACS
Nano 12:2580–2590
53. Krivenkov V, Goncharov S, Samokhvalov P, Sanchez-Iglesias A, Grzelczak M, Nabiev I,
Rakovich YP (2019) Enhancement of biexciton emission due to long- range interaction of
single quantum dots and gold nanorods in a thin-film hybrid nanostructure. J Phys Chem Lett
10:481–486
54. Bharadwaj P, Novotny L (2007) Spectral dependence of single molecule fluorescence
enhancement. Opt Express 15:14266–14274
N. Tamai and S. Masuo
36. Naiki H, Uedao T, Wang L, Tamai N, Masuo S (2017) Multiphoton emission enhancement from
a single colloidal quantum dot using SiO 2 -coated silver nanoparticles. ACS Omega 2:728–737
37. Yuan CT, Yu P, Ko HC, Huang J, Tang J (2009) Antibunching single-photon emission and
blinking suppression of CdSe/ZnS quantum dots. ACS Nano 3:3051–3056
38. Mallek-Zouari I, Buil S, Quelin X, Mahler B, Dubertret B, Hermier JP (2010) Plasmon assisted
single photon emission of CdSe/CdS nanocrystals deposited on random gold film. Appl Phys
Lett 97:053109
39. Vion C, Spinicelli P, Coolen L, Schwob C, Frigerio JM, Hermier JP (2010) Maitre A E
(2010) Controlled modification of single colloidal CdSe/ZnS nanocrystal fluorescence through
interactions with a gold surface. Opt Express 18:7440–7455
40. Canneson D, Mallek-Zouari I, Buil S, Quelin X, Javaux C, Mahler B, Dubertret B, Hermier JP
(2011) Strong Purcell effect observed in single thick-shell CdSe/CdS nanocrystals coupled to
localized surface plasmons. Phys Rev B 84:245423
41. Leblanc SJ, McClanahan MR, Jones M, Moyer PJ (2013) Enhancement of multiphoton
emission from single CdSe quantum dots coupled to gold films. Nano Lett 13:1662–1669
42. Park YS, Ghosh Y, Chen Y, Piryatinski A, Xu P, Mack NH, Wang HL, Klimov VI, Hollingsworth
JA, Htoon H (2013) Super-poissonian statistics of photon emission from single CdSe-CdS
core-shell nanocrystals coupled to metal nanostructures. Phys Rev Lett 110:117401
43. Park YS, Ghosh Y, Xu P, Mack NH, Wang HL, Hollingsworth JA, Htoon H (2013) Singlenanocrystal photoluminescence spectroscopy studies of plasmon–multiexciton interactions at
low temperature. J Phys Chem Lett 4:1465–1470
44. Yuan CT, Wang YC, Cheng HW, Wang HS, Kuo MY, Shih MH, Tang J (2013) Modification of
fluorescence properties in single colloidal quantum dots by coupling to plasmonic gap modes.
J Phys Chem C 117:12762–12768
45. Dey S, Zhou YD, Tian XD, Jenkins JA, Chen O, Zou SL, Zhao J (2015) An Experimental
andTheoretical Mechanistic study of biexciton quantum yield enhancement in single quantum
dots near gold nanoparticles. Nanoscale 7:6851–6858
46. Wang F, Karan NS, Nguyen HM, Ghosh Y, Hollingsworth JA, Htoon H (2015) Coupling single
giant nanocrystal quantum dots to the fundamental mode of patch nanoantennas tthrough fringe
field. Sci Rep 5:14313
47. Wang F, Karan NS, Nguyen HM, Ghosh Y, Sheehan CJ, Hollingsworth JA, Htoon H (2015)
Correlated structural-optical study of single nanocrystals in a gap-bar antenna: effects of
plasmonics on excitonic recombination pathways. Nanoscale 7:9387–9393
48. Wang F, Karan NS, Nguyen HM, Mangum BD, Ghosh Y, Sheehan CJ, Hollingsworth JA,
Htoon H (2015) Quantum optical signature of plasmonically coupled nanocrystal quantum
dots. Small 11:5028–5034
49. Dey S, Zhao J (2016) Plasmonic effect on exciton and multiexciton emission of single quantum
dots. J Phys Chem Lett 7:2921–2929
50. Hoang TB, Akselrod GM, Mikkelsen MH (2016) Ultrafast room-temperature single photon
emission from quantum dots coupled to plasmonic nanocavities. Nano Lett 16:270–275
51. Dey S, Zhou Y, Sun Y, Jenkins JA, Kriz D, Suib SL, Chen O, Zou S, Zhao J (2018) Excitation
wavelength dependent photon anti-bunching/bunching from s single quantum dots near gold
nanostructures. Nanoscale 10:1038–1046
52. Mundoor H, Sheetah GH, Park S, Ackerman PJ, Smalyukh II, van de Lagemaat J (2018)
Tuning and switching a plasmonic quantum dot “sandwich” in a nematic line defect. ACS
Nano 12:2580–2590
53. Krivenkov V, Goncharov S, Samokhvalov P, Sanchez-Iglesias A, Grzelczak M, Nabiev I,
Rakovich YP (2019) Enhancement of biexciton emission due to long- range interaction of
single quantum dots and gold nanorods in a thin-film hybrid nanostructure. J Phys Chem Lett
10:481–486
54. Bharadwaj P, Novotny L (2007) Spectral dependence of single molecule fluorescence
enhancement. Opt Express 15:14266–14274
