6 Absorption-Based Far-Field Label-Free Super-Resolution …
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112. C. Gmachl, D.L. Sivco, R. Colombelli, F. Capasso, A.Y. Cho, Ultra-broadband semiconductor
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113. Y. Yao, A.J. Hoffman, C.F. Gmachl, Mid-infrared quantum cascade lasers. Nat. Photonics 6,
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116. Y. Bai, D. Zhang, C. Li, C. Liu, J.-X. Cheng, Bond-selective imaging of cells by mid-infrared
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121. A. Totachawattana, M.K. Hong, S. Erramilli, M.Y. Sander, Multiple bifurcations with signal
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122. M. Yorulmaz, S. Nizzero, A. Hoggard, L.-Y. Wang, Y.-Y. Cai, M.-N. Su, W.-S. Chang, S.
Link, Single-particle absorption spectroscopy by photothermal contrast. Nano Lett. 15, 3041
(2015)
123. P. Zijlstra, P.M.R. Paulo, M. Orrit, Optical detection of single non-absorbing molecules using
the surface plasmon resonance of a gold nanorod. Nat. Nanotechnol. 7, 379–382 (2012)
124. L.K. Bogart, A. Taylor, Y. Cesbron, P. Murray, R. Lévy, Photothermal microscopy of the
core of dextran-coated iron oxide nanoparticles during cell uptake. ACS Nano 6, 5961–5971
(2012)
125. F. Kitagawa, Y. Akimoto, K. Otsuka, Label-free detection of amino acids using gold nanoparticles in electrokinetic chromatography–thermal lens microscopy. J. Chromatogr. A 1216,
2943–2946 (2009)
126. J. Hartmann, P. Voigt, M. Reichling, Measuring local thermal conductivity in polycrystalline
diamond with a high resolution photothermal microscope. J. Appl. Physs 81, 2966–2972
(1997)
127. M. Reichling, E. Welsch, A. Duparre, E. Matthias, Laterally and depth resolved photothermal
absorption measurements on ZrO 2 and MgF 2 single-layer films, in Optical Systems Design
‘92 (SPIE, 1993), p. 11
128. A. During, M. Commandré, C. Fossati, B. Bertussi, J.-Y. Natoli, J.-L. Rullier, H. Bercegol,
P. Bouchut, Integrated photothermal microscope and laser damage test facility for in-situ
investigation of nanodefect induced damage. Opt. Express 11, 2497–2501 (2003)
129. R. Chatterjee, I.M. Pavlovetc, K. Aleshire, M. Kuno, Single semiconductor nanostructure
extinction spectroscopy. J. Phys. Chem. C 122, 16443–16463 (2018)
167
110. R. Furstenberg, C.A. Kendziora, M.R. Papantonakis, V. Nguyen, R. McGill, Chemical imaging
using infrared photothermal microspectroscopy, in Next-Generation Spectroscopic Technologies V (International Society for Optics and Photonics, Baltimore, MD, 2012), p. 837411
111. A. Tredicucci, C. Gmachl, F. Capasso, D.L. Sivco, A.L. Hutchinson, A.Y. Cho, A multiwavelength semiconductor laser. Nature 396, 350–353 (1998)
112. C. Gmachl, D.L. Sivco, R. Colombelli, F. Capasso, A.Y. Cho, Ultra-broadband semiconductor
laser. Nature 415, 883–887 (2002)
113. Y. Yao, A.J. Hoffman, C.F. Gmachl, Mid-infrared quantum cascade lasers. Nat. Photonics 6,
432–439 (2012)
114. F. Rotermund, V. Petrov, F. Noack, Difference-frequency generation of intense femtosecond
pulses in the mid-IR (4–12 µm) using HgGa 2 S 4 and AgGaS 2 . Opt. Commun. 185, 177–183
(2000)
115. C. Erny, K. Moutzouris, J. Biegert, D. Kühlke, F. Adler, A. Leitenstorfer, U. Keller, Midinfrared difference-frequency generation of ultrashort pulses tunable between 3.2 and 4.8 µm
from a compact fiber source. Opt. Lett. 32, 1138–1140 (2007)
116. Y. Bai, D. Zhang, C. Li, C. Liu, J.-X. Cheng, Bond-selective imaging of cells by mid-infrared
photothermal microscopy in high wavenumber region. J. Phys. Chem. B 121, 10249–10255
(2017)
117. L. Wei, Y. Yu, Y. Shen, M.C. Wang, W. Min, Vibrational imaging of newly synthesized proteins
in live cells by stimulated Raman scattering microscopy. Proc. Natl. Acad. Sci. U.S.A. 110,
11226 (2013)
118. A. Totachawattana, S. Erramilli, M.Y. Sander, Optimization of mid-IR photothermal imaging
for tissue analysis, in SPIE Optical Engineering + Applications (SPIE, 2015), p. 7
119. T.J. Huffman, R. Furstenberg, C.A. Kendziora, R.A. McGill, Infrared spectroscopy below
the diffraction limit using an optical probe, in SPIE Commercial + Scientific Sensing and
Imaging (SPIE, 2018), p. 6
120. D. Bashford, M. Karplus, pKa’s of ionizable groups in proteins: atomic detail from a continuum electrostatic model. Biochemistry 29, 10219–10225 (1990)
121. A. Totachawattana, M.K. Hong, S. Erramilli, M.Y. Sander, Multiple bifurcations with signal
enhancement in nonlinear mid-infrared thermal lens spectroscopy. Analyst 142, 1882–1890
(2017)
122. M. Yorulmaz, S. Nizzero, A. Hoggard, L.-Y. Wang, Y.-Y. Cai, M.-N. Su, W.-S. Chang, S.
Link, Single-particle absorption spectroscopy by photothermal contrast. Nano Lett. 15, 3041
(2015)
123. P. Zijlstra, P.M.R. Paulo, M. Orrit, Optical detection of single non-absorbing molecules using
the surface plasmon resonance of a gold nanorod. Nat. Nanotechnol. 7, 379–382 (2012)
124. L.K. Bogart, A. Taylor, Y. Cesbron, P. Murray, R. Lévy, Photothermal microscopy of the
core of dextran-coated iron oxide nanoparticles during cell uptake. ACS Nano 6, 5961–5971
(2012)
125. F. Kitagawa, Y. Akimoto, K. Otsuka, Label-free detection of amino acids using gold nanoparticles in electrokinetic chromatography–thermal lens microscopy. J. Chromatogr. A 1216,
2943–2946 (2009)
126. J. Hartmann, P. Voigt, M. Reichling, Measuring local thermal conductivity in polycrystalline
diamond with a high resolution photothermal microscope. J. Appl. Physs 81, 2966–2972
(1997)
127. M. Reichling, E. Welsch, A. Duparre, E. Matthias, Laterally and depth resolved photothermal
absorption measurements on ZrO 2 and MgF 2 single-layer films, in Optical Systems Design
‘92 (SPIE, 1993), p. 11
128. A. During, M. Commandré, C. Fossati, B. Bertussi, J.-Y. Natoli, J.-L. Rullier, H. Bercegol,
P. Bouchut, Integrated photothermal microscope and laser damage test facility for in-situ
investigation of nanodefect induced damage. Opt. Express 11, 2497–2501 (2003)
129. R. Chatterjee, I.M. Pavlovetc, K. Aleshire, M. Kuno, Single semiconductor nanostructure
extinction spectroscopy. J. Phys. Chem. C 122, 16443–16463 (2018)
