74
J. Eur. Opt. Society-Rapid Publ. 21, 7( 2025)
40 Zhang C, Aldana-Mendoza JA( 2021) Coherent Raman scattering microscopy for chemical imaging of biological systems, J. Phys. Photonics 3, 032002. https:// doi. org / 10.1088 / 2515-7647 / abfd09.
41 Greve M, Bodermann B, Telle HR, Baum P, Riedle E, Gated heterodyne coherent anti-Stokes Raman scattering for highcontrast vibrational imaging, Optical Measurement Systems for Industrial Inspection IV, SPIE 5856, 41( 2005). https:// doi. org / 10.1117 / 12.612555. 42 Boyd RW, Nonlinear optics, 4th edn( Elsevier, 2020). 43 Park JH, Lee SW, Lee ES, Lee JY, A method for superresolved CARS microscopy with structured illumination in two dimensions, Opt. Express 22, 9854( 2014). https:// doi. org / 10.1364 / OE. 22.009854.
44 Hajek KM, Littleton B, Turk D, McIntyre TJ, Rubinsztein- Dunlop H, A method for achieving super-resolved widefield CARS microscopy, Opt. Express 18, 19263( 2010). https:// doi. org / 10.1364 / OE. 18.019263.
45 Schwartz O, Levitt JM, Tenne R, Itzhakov S, Deutsch Z, Oron D, Superresolution microscopy with quantum emitters, Nano Lett. 13, 5832( 2013). https:// doi. org / 10.1021 / nl402552m.
46 Gatto Monticone D, Katamadze K, Traina P, Moreva E, Forneris J, Ruo-Berchera I, Olivero P, Degiovanni IP, Brida G, Genovese M, Beating the Abbe diffraction limit in confocal microscopy via nonclassical photon statistics, Phys. Rev. Lett. 113, 143602( 2014). https:// doi. org / 10.1103 / PhysRevLett. 113.143602.
47 Dertinger T, Colyer R, Iyer G, Weiss S, Enderlein J, Fast, background-free, 3D super-resolution optical fluctuation imaging( SOFI), Proc. Natl Acad. Sci. 106, 22287( 2009). https:// doi. org / 10.1073 / pnas. 0907866106.
48 Cevoli D, Vitale R, Vandenberg W, Hugelier S, Van den Eynde R, Dedecker P, Ruckebusch C, Design of experiments for the optimization of SOFI super-resolution microscopy imaging, Biomed. Opt. Express 12, 2617( 2021). https:// doi. org / 10.1364 / boe. 421168.
49 Pawlowska M, Tenne R, Ghosh B, Makowski A, Lapkiewicz R, Embracing the uncertainty: the evolution of SOFI into a diverse family of fluctuation-based super-resolution microscopy methods, J. Phys. Photonics 4, 012002( 2021). https:// doi. org / 10.1088 / 2515-7647 / ac3838.
50 Classen A, von Zanthier J, Scully MO, Agarwal GS, Superresolution via structured illumination quantum correlation microscopy, Optica 4, 580( 2017). https:// doi. org / 10.1364 / OPTICA. 4.000580.
51 Descloux AC, Grußmayer KS, Navikas V, Mahecic D, Manley S, Radenovic A, Experimental combination of super-resolution optical fluctuation imaging with structured illumination microscopy for large fields-of-view, ACS Photonics 8, 2440( 2021). https:// doi. org / 10.1021 / acsphotonics. 1c00668.
52 Tenne R, Rossman U, Rephael B, Israel Y, Krupinski- Ptaszek A, Lapkiewicz R, Silberberg Y, Oron D, Superresolution enhancement by quantum image scanning microscopy, Nat. Photonics 13, 116( 2019). https:// doi. org / 10.1038 / s41566-018-0324-z.
53 Picariello F, Losero E, Tchernij SD, Boucher P, Genovese M, Ruo-Berchera I, Degiovanni IP, Quantum super-resolution microscopy by photon statistics and structured light, 2024. https:// doi. org / 10.48550 / arXiv. 2408.11654
54 https:// en. wikipedia. org / wiki / RESOLFT.
55 Hell SW, Far-field optical nanoscopy, Science 316, 1153( 2007). https:// doi. org / 10.1126 / science. 1137395.
56 Hanne J, Falk HJ, Görlitz F, Hoyer P, Engelhardt J, Sahl SJ, Hell SW, STED nanoscopy with fluorescent quantum dots, Nat. Commun. 6, 7127( 2014). https:// doi. org / 10.1038 / ncomms8127.
57 Han KY, Willig KI, Rittweger E, Jelezko F, Eggeling C, Hell SW, Three-dimensional stimulated emission depletion microscopy of nitrogen-vacancy centers in diamond using continuous-wave light, Nano Lett. 9, 3323( 2009). https:// doi. org / 10.1021 / nl901597v.
58 Hell SW, Toward fluorescence nanoscopy, Nat. Biotechnol. 21, 1347( 2003). https:// doi. org / 10.1038 / nbt895.
59 Schermelleh L, Heintzmann R, Leonhardt H, A guide to super-resolution fluorescence microscopy, J. Cell Biol. 190, 165( 2010). https:// doi. org / 10.1083 / jcb. 201002018.
60 Rittweger E, Wildanger D, Hell SW, Far-field fluorescence nanoscopy of diamond color centers by ground state depletion, Europhys. Lett. 86, 14001( 2009). https:// doi. org / 10.1209 / 0295-5075 / 86 / 14001.
61 Fujita K, Kobayashi M, Kawano S, Yamanaka M, Kawata S, High-resolution confocal microscopy by saturated excitation of fluorescence, Phys. Rev. Lett. 99, 228105( 2007). https:// doi. org / 10.1103 / PhysRevLett. 99.228105.
62 Jagadale TC, Murali DS, Chu SW, Nonlinear absorption and scattering of a single plasmonic nanostructure characterized by X-scan technique, Beilstein J. Nanotechnol. 10, 2182( 2019). https:// doi. org / 10.3762 / bjnano. 10.211.
63 Chu SW, Wu HY, Huang YT, Su TY, Lee H, Yonemaru Y, Yamanaka M, Oketani R, Kawata S, Shoji S, Fujita K, Saturation and reverse saturation of scattering in a single plasmonic nanoparticle, ACS Photonics 1, 32( 2014). https:// doi. org / 10.1021 / ph4000218.
64 Lee H, Li KY, Huang YT, Shen PT, Deka G, Oketani R, Yonemaru Y, Yamanaka M, Fujita K, Chu SW, Measurement of scattering nonlinearities from a single plasmonic nanoparticle, J. Vis. Exp. 107, e53338( 2016). https:// doi. org / 10.3791 / 53338.
65 Kauranen M, Zayats AV, Nonlinear plasmonics, Nat. Photonics 6, 737( 2012). https:// doi. org / 10.1038 / nphoton. 2012.244.
66 Wu HY, Huang YT, Shen PT, Lee H, Oketani R, Yonemaru Y, Yamanaka M, Shoji S, Lin KH, Chang CW, Kawata S, Ultrasmall all-optical plasmonic switch and its application to superresolution imaging, Sci. Rep. 6, 24293( 2016). https:// doi. org / 10.1038 / srep24293.
67 Hädrich M, Siefke T, Banasch M, Zeitner UD, Optical metasurfaces made by cell projection lithography: Electron beam nanopatterning with high optical quality on large areas, PhotonicsViews 19, 28( 2022). https:// doi. org / 10.1002 / phvs. 202200036.
68 Mazaheri Z, Koral C, Andreone A, Marino A, Terahertz time-domain ellipsometry: tutorial, J. Opt. Soc. Am. A 39, 1420( 2022). https:// doi. org / 10.1364 / josaa. 463969.
69 Rittweger E, Han KY, Irvine SE, Eggeling C, Hell SW STED microscopy reveals crystal colour centres with nanometric resolution, Nat. Photonics 3, 144( 2009). https:// doi. org / 10.1038 / nphoton. 2009.2.
70 Balasubramanian G, Lazariev A, Arumugam SR, Duan DW, Nitrogen-vacancy color center in diamond-emerging nanoscale applications in bioimaging and biosensing, Curr. Opin. Chem. Biol. 20, 69( 2014). https:// doi. org / 10.1016 / j. cbpa. 2014.04.014.