Journal of Innovative Optical Health Sciences, Volume. 9, Issue 3, 1641003(2016)
3D fluorescence emission difference microscopy based on spatial light modulator
[1] [1] T. A. Klar, S. W. Hell, "Subdiffraction resolution in far-field fluorescence microscopy," Opt. Lett. 24(14), 954–956 (1999).
[2] [2] H. K€ohler, "On Abbe's theory of image formation in the microscope," J. Mod. Opt. 28(12), 1691–1701 (1981).
[3] [3] F. Bergermann et al., "2000-fold parallelized dualcolor STED fluorescence nanoscopy," Opt. Exp. 23 (1), 211–223 (2015).
[4] [4] T. Wilson, Confocal Microscopy, Vol. 426, pp. 1–64, Academic Press, London (1990).
[5] [5] T. Wilson, "Resolution and optical sectioning in the confocal microscope," J. Microsc. 244(2), 113–121 (2011).
[6] [6] Z. Rong et al., "Real-time super-resolution imaging by high-speed fluorescence emission difference microscopy," J. Mod. Opt. 61(16), 1364–1371 (2014).
[7] [7] C. Kuang et al., "Breaking the diffraction barrier using fluorescence emission difference microscopy," Sci. Rep. 3, 1441–1447 (2013).
[8] [8] Y. Fang et al., "Enhancing the resolution and contrast in CW-STED microscopy," Opt. Commun. 322, 169–174 (2014).
[9] [9] M. J. Rust, M. Bates, X. Zhuang, "Stochastic optical reconstruction microscopy (STORM) provides sub-diffraction-limit image resolution," Nat. Methods 3(10), 793 (2006).
[10] [10] E. Betzig et al., "Imaging intracellular fluorescent proteins at nanometer resolution," Science 313 (5793), 1642–1645 (2006).
[11] [11] S. W. Hell, J. Wichmann, "Breaking the diffraction resolution limit by stimulated emission: Stimulatedemission- depletion fluorescence microscopy," Opt. Lett. 19(11), 780–782 (1994).
[12] [12] R. Heintzmann, C. G. Cremer, Laterally modulated excitation microscopy: Improvement of resolution by using a diffraction grating, BiOS Europe'98, International Society for Optics and Photonics (1999).
[13] [13] M. G. Gustafsson, "Surpassing the lateral resolution limit by a factor of two using structured illumination microscopy," J. Microsc. 198(2), 82–87 (2000).
[14] [14] W. A. Carrington et al., "Superresolution three-dimensional images of fluorescence in cells with minimal light exposure," Science 268(5216), 1483–1487 (1995).
[15] [15] H. Kano et al., "Avalanche photodiode detection with object scanning and image restoration provides 2-4 fold resolution increase in two-photon fluorescence microscopy," Bioimaging 4(3), 187–197 (1996).
[16] [16] A. Sentenac et al., "High-resolution total-internalrefl ection fluorescence microscopy using periodically nanostructured glass slides," J. Opt. Soc. Am. A, Opt. Image Sci. 26(12), 2550–2557 (2009).
[17] [17] H. Dehez, M. Piche, Y. De Koninck, "Resolution and contrast enhancement in laser scanning microscopy using dark beam imaging," Opt. Exp. 21 (13), 15912–15925 (2013).
[18] [18] E. Rittweger, D. Wildanger, S. Hell, "Far-field fluorescence nanoscopy of diamond color centers by ground state depletion," Europhys. Lett. 86(1), 14001 (2009).
[19] [19] B. Harke et al., "Three-dimensional nanoscopy of colloidal crystals," Nano Lett. 8(5), 1309–1313 (2008).
[20] [20] S. Li et al., "Enhancing the performance of fluorescence emission difference microscopy using beam modulation," J. Opt. 15(12), 125708 (2013).
[21] [21] A. Gasecka et al., "Resolution and contrast enhancement in coherent anti-Stokes Raman-scattering microscopy," Opt. Lett. 38(21), 4510–4513 (2013).
[22] [22] Z. Rong et al., "Super-resolution microscopy based on fluorescence emission difference of cylindrical vector beams," Opt. Commun. 354, 71–78 (2015).
[23] [23] S. Segawa, Y. Kozawa, S. Sato, "Resolution enhancement of confocal microscopy by subtraction method with vector beams," Opt. Lett. 39(11), 3118–3121 (2014).
[24] [24] X. Hao et al., "Effects of polarization on the deexcitation dark focal spot in STED microscopy," J. Opt. 12(11), 115707 (2010).
[25] [25] D. Wildanger et al., "A compact STED microscope providing 3D nanoscale resolution," J. Microsc. 236(1), 35–43 (2009).
[26] [26] S. You et al., "Three-dimensional super-resolution imaging for fluorescence emission difference microscopy," AIP Adv. 5(8), 084901 (2015).
[27] [27] S. Segawa, Y. Kozawa, S. Sato, "Demonstration of subtraction imaging in confocal microscopy with vector beams," Opt. Lett. 39(15), 4529–4532 (2014).
[28] [28] N. Wang, T. Kobayashi, "Polarization modulation for fluorescence emission difference microscopy," Opt. Exp. 23(10), 13704–13712 (2015).
[29] [29] N. Wang, T. Kobayashi, "Numerical study of the subtraction threshold for fluorescence difference microscopy," Opt. Exp. 22(23), 28819–28830 (2014).
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Guangyuan Zhao, Zihao Rong, Cuifang Kuang, Cheng Zheng, Xu Liu. 3D fluorescence emission difference microscopy based on spatial light modulator[J]. Journal of Innovative Optical Health Sciences, 2016, 9(3): 1641003
Received: Feb. 28, 2016
Accepted: Apr. 6, 2016
Published Online: Dec. 27, 2018
The Author Email: Cuifang Kuang (Cfkuang@zju.edu.cn)