168
C. Li and J.-X. Cheng
130. V.P. Zharov, E.I. Galanzha, V.V. Tuchin, Photothermal imaging of moving cells in lymph and
blood flow in vivo, in Biomedical Optics 2004 (SPIE, 2004), p. 11
131. A.V. Brusnichkin, D.A. Nedosekin, E.I. Galanzha, Y.A. Vladimirov, E.F. Shevtsova, M.A.
Proskurnin, V.P. Zharov, Ultrasensitive label-free photothermal imaging, spectral identification, and quantification of cytochrome c in mitochondria, live cells, and solutions. J. Biophotonics 3, 791–806 (2010)
132. D.A. Nedosekin, E.V. Shashkov, E.I. Galanzha, L. Hennings, V.P. Zharov, Photothermal multispectral image cytometry for quantitative histology of nanoparticles and micrometastasis in
intact, stained and selectively burned tissues. Cytometry Part A 77A, 1049–1058 (2010)
133. J. Miyazaki, H. Tsurui, K. Kawasumi, T. Kobayashi, Sensitivity enhancement of photothermal
microscopy with radially segmented balanced detection. Opt. Lett. 40, 479–482 (2015)
134. J. Miyazaki, Y. Toumon, Experimental evaluation of temperature increase and associated
detection sensitivity in shot noise-limited photothermal microscopy. Opt. Commun. 430,
170–175 (2019)
135. T. Tomimatsu, J. Miyazaki, Y. Kano, T. Kobayashi, Photothermal imaging of skeletal muscle
mitochondria. Biomed. Opt. Express 8, 2965–2975 (2017)
136. J. Miyazaki, H. Tsurui, T. Kobayashi, Reduction of distortion in photothermal microscopy
and its application to the high-resolution three-dimensional imaging of nonfluorescent tissues.
Biomed. Opt. Express 6, 3217–3224 (2015)
137. J. He, N. Wang, H. Tsurui, M. Kato, M. Iida, T. Kobayashi, Noninvasive, label-free, threedimensional imaging of melanoma with confocal photothermal microscopy: differentiate
malignant melanoma from benign tumor tissue. Sci. Rep. 6, 30209 (2016)
138. A. Totachawattana, M.S. Regan, N.Y.R. Agar, S. Erramilli, M.Y. Sander, Label-free midInfrared photothermal spectroscopy and imaging of neurological tissue, in Conference on
Lasers and Electro-optics (Optical Society of America, San Jose, California, 2017), p.
ATu4A.3
139. A. Totachawattana, D. Huang, L. Li, K.A. Brown, S. Erramilli, M.Y. Sander, Robust midinfrared photothermal imaging system for characterization of thin films at high spatial resolution, in Conference on Lasers and Electro-optics (Optical Society of America, San Jose,
California, 2017), p. JW2A.47
140. R. Chatterjee, I.M. Pavlovetc, K. Aleshire, G.V. Hartland, M. Kuno, Subdiffraction infrared
imaging of mixed cation perovskites: probing local cation heterogeneities. ACS Energy Lett.
3, 469–475 (2018)
141. J.J. Bae et al., Sensitive photo-thermal response of graphene oxide for mid-infrared detection.
Nanoscale 7, 15695–15700 (2015)
142. J.W. Thomas, A. Polak, G.M. Bonner, S. Enderle, M.H. Dunn, D.J.M. Stothard, Optical
parametric oscillator-based trace detection of gases in the mid-infrared region using phasefluctuation optical heterodyne spectroscopy, in SPIE Defense + Security (SPIE, 2018), p. 9
143. Z. Li, Z. Wang, F. Yang, W. Jin, W. Ren, Mid-infrared fiber-optic photothermal interferometry.
Opt. Lett. 42, 3718–3721 (2017)
144. R.C. Miller, Optical second harmonic generation in piezoelectric crystals. Appl. Phys. Lett.
5, 17–19 (1964)
145. K. Wang, C. Xu, Tunable high-energy soliton pulse generation from a large-mode-area fiber
and its application to third harmonic generation microscopy. Appl. Phys. Lett. 99, 071112
(2011)
146. W. Denk, J.H. Strickler, W.W. Webb, Two-photon laser scanning fluorescence microscopy.
Science 248, 73–76 (1990)
147. C.Y. Dong, P.T. So, T. French, E. Gratton, Fluorescence lifetime imaging by asynchronous
pump-probe microscopy. Biophys. J. 69, 2234–2242 (1995)
148. D.Y. Davydova, A. Cadena, D. Akimov, B. Dietzek, Transient absorption microscopy:
advances in chemical imaging of photoinduced dynamics. Laser Photonics Rev. 10, 62–81
(2015)
149. S.W. Hell, M. Kroug, Ground-state-depletion fluorscence microscopy: a concept for breaking
the diffraction resolution limit. Appl. Phys. B 60, 495–497 (1995)
C. Li and J.-X. Cheng
130. V.P. Zharov, E.I. Galanzha, V.V. Tuchin, Photothermal imaging of moving cells in lymph and
blood flow in vivo, in Biomedical Optics 2004 (SPIE, 2004), p. 11
131. A.V. Brusnichkin, D.A. Nedosekin, E.I. Galanzha, Y.A. Vladimirov, E.F. Shevtsova, M.A.
Proskurnin, V.P. Zharov, Ultrasensitive label-free photothermal imaging, spectral identification, and quantification of cytochrome c in mitochondria, live cells, and solutions. J. Biophotonics 3, 791–806 (2010)
132. D.A. Nedosekin, E.V. Shashkov, E.I. Galanzha, L. Hennings, V.P. Zharov, Photothermal multispectral image cytometry for quantitative histology of nanoparticles and micrometastasis in
intact, stained and selectively burned tissues. Cytometry Part A 77A, 1049–1058 (2010)
133. J. Miyazaki, H. Tsurui, K. Kawasumi, T. Kobayashi, Sensitivity enhancement of photothermal
microscopy with radially segmented balanced detection. Opt. Lett. 40, 479–482 (2015)
134. J. Miyazaki, Y. Toumon, Experimental evaluation of temperature increase and associated
detection sensitivity in shot noise-limited photothermal microscopy. Opt. Commun. 430,
170–175 (2019)
135. T. Tomimatsu, J. Miyazaki, Y. Kano, T. Kobayashi, Photothermal imaging of skeletal muscle
mitochondria. Biomed. Opt. Express 8, 2965–2975 (2017)
136. J. Miyazaki, H. Tsurui, T. Kobayashi, Reduction of distortion in photothermal microscopy
and its application to the high-resolution three-dimensional imaging of nonfluorescent tissues.
Biomed. Opt. Express 6, 3217–3224 (2015)
137. J. He, N. Wang, H. Tsurui, M. Kato, M. Iida, T. Kobayashi, Noninvasive, label-free, threedimensional imaging of melanoma with confocal photothermal microscopy: differentiate
malignant melanoma from benign tumor tissue. Sci. Rep. 6, 30209 (2016)
138. A. Totachawattana, M.S. Regan, N.Y.R. Agar, S. Erramilli, M.Y. Sander, Label-free midInfrared photothermal spectroscopy and imaging of neurological tissue, in Conference on
Lasers and Electro-optics (Optical Society of America, San Jose, California, 2017), p.
ATu4A.3
139. A. Totachawattana, D. Huang, L. Li, K.A. Brown, S. Erramilli, M.Y. Sander, Robust midinfrared photothermal imaging system for characterization of thin films at high spatial resolution, in Conference on Lasers and Electro-optics (Optical Society of America, San Jose,
California, 2017), p. JW2A.47
140. R. Chatterjee, I.M. Pavlovetc, K. Aleshire, G.V. Hartland, M. Kuno, Subdiffraction infrared
imaging of mixed cation perovskites: probing local cation heterogeneities. ACS Energy Lett.
3, 469–475 (2018)
141. J.J. Bae et al., Sensitive photo-thermal response of graphene oxide for mid-infrared detection.
Nanoscale 7, 15695–15700 (2015)
142. J.W. Thomas, A. Polak, G.M. Bonner, S. Enderle, M.H. Dunn, D.J.M. Stothard, Optical
parametric oscillator-based trace detection of gases in the mid-infrared region using phasefluctuation optical heterodyne spectroscopy, in SPIE Defense + Security (SPIE, 2018), p. 9
143. Z. Li, Z. Wang, F. Yang, W. Jin, W. Ren, Mid-infrared fiber-optic photothermal interferometry.
Opt. Lett. 42, 3718–3721 (2017)
144. R.C. Miller, Optical second harmonic generation in piezoelectric crystals. Appl. Phys. Lett.
5, 17–19 (1964)
145. K. Wang, C. Xu, Tunable high-energy soliton pulse generation from a large-mode-area fiber
and its application to third harmonic generation microscopy. Appl. Phys. Lett. 99, 071112
(2011)
146. W. Denk, J.H. Strickler, W.W. Webb, Two-photon laser scanning fluorescence microscopy.
Science 248, 73–76 (1990)
147. C.Y. Dong, P.T. So, T. French, E. Gratton, Fluorescence lifetime imaging by asynchronous
pump-probe microscopy. Biophys. J. 69, 2234–2242 (1995)
148. D.Y. Davydova, A. Cadena, D. Akimov, B. Dietzek, Transient absorption microscopy:
advances in chemical imaging of photoinduced dynamics. Laser Photonics Rev. 10, 62–81
(2015)
149. S.W. Hell, M. Kroug, Ground-state-depletion fluorscence microscopy: a concept for breaking
the diffraction resolution limit. Appl. Phys. B 60, 495–497 (1995)
