Digital micro-mirror devices (DMDs) have recently emerged as practical spatial light modulators (SLMs) for applications in photonics, primarily due to their modulation rates, which exceed by several orders of magnitude those of the already well-established nematic liquid crystal (LC)-based SLMs. This, however, comes at the expense of limited modulation depth and diffraction efficiency. Here we compare the beam-shaping fidelity of both technologies when applied to light control in complex environments, including an aberrated optical system, a highly scattering layer and a multimode optical fibre. We show that, despite their binary amplitude-only modulation, DMDs are capable of higher beam-shaping fidelity compared to LC-SLMs in all considered regimes. © 2017 Optical Society of America under the terms of the OSA Open Access Publishing Agreement OCIS codes: (070.6120) Spatial light modulators; (230.3720) Liquid-crystal devices; (230.4685) Optical microelectromechanical devices; (110.1080) Active or adaptive optics; (060.2350) Fiber optics imaging. References and links 1. M. J. Booth, M. A. A. Neil, R. Juskaitis, and T. Wilson, “Adaptive aberration correction in a confocal microscope,” Proc. Natl. Acad. Sci. U. S. A. 99(9), 5788–5792 (2002). 2. A. Jesacher, A. Schwaighofer, S. Fürhapter, C. Maurer, S. Bernet, and M. Ritsch-Marte, “Wavefront correction of spatial light modulators using an optical vortex image,” Opt. Express 15(9), 5801–5808 (2007). 3. I. M. Vellekoop and A. P. Mosk, “Phase control algorithms for focusing light through turbid media,” Opt. Commun. 281(11), 3071–3080 (2008). 4. S. M. Popoff, G. Lerosey, R. Carminati, M. Fink, A. C. Boccara, and S. Gigan, “Measuring the transmission matrix in optics: An approach to the study and control of light propagation in disordered media,” Phys. Rev. Lett. 104(10), 100601 (2010). 5. T. Čižmár, M. Mazilu, and K. Dholakia, “In situ wavefront correction and its application to micromanipulation,” Nat. Photonics 4, 388–394 (2010). 6. A. P. Mosk, A. Lagendijk, G. Lerosey, and M. Fink, “Controlling waves in space and time for imaging and focusing in complex media,” Nat. Photonics 6, 283–292 (2012). 7. R. Di Leonardo and S. Bianchi, “Hologram transmission through multi-mode optical fibers,” Opt. Express 19(1), 247–254 (2011). 8. T. Čižmár and K. Dholakia, “Exploiting multimode waveguides for pure fibre-based imaging,” Nat. Commun. 3, 1027 (2012). 9. B. Judkewitz, Y. M. Wang, R. Horstmeyer, A. Mathy, and C. Yang, “Speckle-scale focusing in the diffusive regime with time-reversal of variance-encoded light (TROVE),” Nat. Photonics 7, 300–305 (2013). 10. E. Papagiakoumou, “Optical developments for optogenetics,” Biol. Cell 105(10), 442–464 (2013). 11. O. Katz, E. Small, Y. Guan, and Y. Silberberg, “Noninvasive nonlinear focusing and imaging through strongly scattering turbid layers,” Optica 1(3), 170–174 (2014). 12. I. M. Vellekoop and A. P. Mosk, “Focusing coherent light through opaque strongly scattering media,” Opt. Lett. 32(16), 2309–2311 (2007). 13. E. G. Van Putten, D. Akbulut, J. Bertolotti, W. L. Vos, A. Lagendijk, and A. P. Mosk, “Scattering lens resolves sub-100 nm structures with visible light,” Phys. Rev. Lett. 106(19), 193905 (2011). Vol. 25, No. 24 | 27 Nov 2017 | OPTICS EXPRESS 29874 #307073 https://doi.org/10.1364/OE.25.029874 Journal © 2017 Received 14 Sep 2017; revised 2 Nov 2017; accepted 2 Nov 2017; published 15 Nov 2017 14. D. B. Conkey, A. N. Brown, A. M. Caravaca-Aguirre, and R. Piestun, “Genetic algorithm optimization for focusing through turbid media in noisy environments,” Opt. Express 20(5), 4840–4849 (2012). 15. M. Cui and C. Yang, “Implementation of a digital optical phase conjugation system and its application to study the robustness of turbidity suppression by phase conjugation,” Opt. Express 18(4), 3444–3455 (2010). 16. I. N. Papadopoulos, S. Farahi, C. Moser, and D. Psaltis, “Focusing and scanning light through a multimode optical fiber using digital phase conjugation,” Opt. Express 20(10), 10583–10590 (2012). 17. A. Drémeau, A. Liutkus, D. Martina, O. Katz, C. Schülke, F. Krzakala, S. Gigan, and L. Daudet, “Reference-less measurement of the transmission matrix of a highly scattering material using a DMD and phase retrieval techniques,” Opt. Express 23(9), 11898–11911 (2015). 18. S. Popoff, G. Lerosey, M. Fink, A. C. Boccara, and S. Gigan, “Image transmission through an opaque material,” Nat. Commun. 1, 81 (2009). 19. I. M. Vellekoop, A. Lagendijk, and A. P. Mosk, “Exploiting disorder for perfect focusing,” Nat. Photonics 4, 320–322 (2010). 20. T. Čižmár and K. Dholakia, “Shaping the light transmission through a multimode optical fibre: complex transformation analysis and applications in biophotonics,” Opt. Express 19(20), 18871–18884 (2011). 21. S. Bianchi and R. Di Leonardo, “A multi-mode fiber probe for holographic micromanipulation and microscopy,” Lab Chip 12(3), 635–639 (2012). 22. I. N. Papadopoulos, S. Farahi, C. Moser, and D. Psaltis, “High-resolution, lensless endoscope based on digital scanning through a multimode optical fiber,” Biomed. Opt. Express 4(2), 260–270 (2013). 23. B. R. Brown and A. W. Lohmann, “Complex spatial filtering with binary masks,” Appl. Opt. 5(6), 967–969 (1966). 24. S. N. Chandrasekaran, H. Ligtenberg, W. Steenbergen, and I. M. Vellekoop, “Using digital micromirror devices for focusing light through turbid media,” Proc. SPIE 8979, 897905 (2014). 25. D. B. Conkey, A. M. Caravaca-Aguirre, and R. Piestun, “High-speed scattering medium characterization with application to focusing light through turbid media,” Opt. Express 20(2), 1733–1740 (2012). 26. S. A. Goorden, J. Bertolotti, and A. P. Mosk, “Superpixel-based spatial amplitude and phase modulation using a digital micromirror device,” Opt. Express 22(15), 17999–18009 (2014). 27. D. Akbulut, T. J. Huisman, E. G. V. Putten, and W. L. Vos, “Focusing light through random photonic media by binary amplitude modulation,” Opt. Express 19(5), 4017–4029 (2011). 28. Y. Choi, C. Yoon, M. Kim, T. D. Yang, C. Fang-Yen, R. R. Dasari, K. J. Lee, and W. Choi, “Scanner-free and wide-field endoscopic imaging by using a single multimode optical fiber,” Phys. Rev. Lett. 109(20), 203901 (2012). 29. A. M. Caravaca-Aguirre, E. Niv, D. B. Conkey, and R. Piestun, “Real-time resilient focusing through a bending multimode fiber,” Opt. Express 21(10), 12881–12887 (2013). 30. W. Lee, “Binary computer-generated holograms,” Appl. Opt. 18(21), 3661–3669 (1979). 31. M. Plöschner, T. Tyc, and T. Čižmár, “Seeing through chaos in multimode fibres,” Nat. Photonics 9, 529–535 (2015). 32. J. García-Márquez, V. López, A. González-Vega, and E. Noé, “Flicker minimization in an LCoS spatial light modulator,” Opt. Express 20(8), 8431–8441 (2012). 33. K. J. Mitchell, S. Turtaev, M. J. Padgett, T. Čižmár, and D. B. Phillips, “High-speed spatial control of the intensity, phase and polarisation of vector beams using a digital micro-mirror device,” Opt. Express 24(25), 29269–29282 (2016). 34. M. Persson, D. Engeström, and M. Goksör, “Reducing the effect of pixel crosstalk in phase only spatial light modulators,” Opt. Express 20(20), 22334–22343 (2012).
[1]
Silvio Bianchi,et al.
A multi-mode fiber probe for holographic micromanipulation and microscopy.
,
2012,
Lab on a chip.
[2]
D. Conkey,et al.
Genetic algorithm optimization for focusing through turbid media in noisy environments.
,
2012,
Optics express.
[3]
S. A. Goorden,et al.
Superpixel-based spatial amplitude and phase modulation using a digital micromirror device.
,
2014,
Optics express.
[4]
Florent Krzakala,et al.
Reference-less measurement of the transmission matrix of a highly scattering material using a DMD and phase retrieval techniques.
,
2015,
Optics express.
[5]
Demetri Psaltis,et al.
High-resolution, lensless endoscope based on digital scanning through a multimode optical fiber
,
2013,
Biomedical optics express.
[6]
Ioannis N. Papadopoulos,et al.
Focusing and scanning light through a multimode optical fiber using digital phase conjugation.
,
2012,
Optics express.
[7]
K. Dholakia,et al.
Exploiting multimode waveguides for pure fibre-based imaging
,
2012,
Nature Communications.
[8]
Eirini Papagiakoumou,et al.
Optical developments for optogenetics
,
2013,
Biology of the cell.
[9]
S Bernet,et al.
Wavefront correction of spatial light modulators using an optical vortex image.
,
2007,
Optics express.
[10]
D. Conkey,et al.
High-speed scattering medium characterization with application to focusing light through turbid media.
,
2012,
Optics express.
[11]
K. Dholakia,et al.
In situ wavefront correction and its application to micromanipulation
,
2010
.
[12]
A. Lohmann,et al.
Complex spatial filtering with binary masks.
,
1966,
Applied optics.
[13]
Moonseok Kim,et al.
Scanner-free and wide-field endoscopic imaging by using a single multimode optical fiber.
,
2012,
Physical review letters.
[14]
Avid,et al.
High-speed spatial control of the intensity , phase and polarisation of vector beams using a digital micro-mirror device
,
2016
.
[15]
Tomáš Čižmár,et al.
Seeing through chaos in multimode fibres
,
2015,
Nature Photonics.
[16]
Wiendelt Steenbergen,et al.
Using digital micromirror devices for focusing light through turbid media
,
2014,
Photonics West - Micro and Nano Fabricated Electromechanical and Optical Components.
[17]
J. García‐Márquez,et al.
Flicker minimization in an LCoS Spatial Light Modulator.
,
2012,
Optics express.
[18]
Ying Min Wang,et al.
Speckle-scale focusing in the diffusive regime with time-reversal of variance-encoded light (TROVE)
,
2013,
Nature Photonics.
[19]
A. Mosk,et al.
Exploiting disorder for perfect focusing
,
2009,
0910.0873.
[20]
S. Popoff,et al.
Measuring the transmission matrix in optics: an approach to the study and control of light propagation in disordered media.
,
2009,
Physical review letters.
[21]
A. Mosk,et al.
Phase control algorithms for focusing light through turbid media
,
2007,
0710.3295.
[22]
Changhuei Yang,et al.
Implementation of a digital optical phase conjugation system and its application to study the robustness of turbidity suppression by phase conjugation
,
2010,
Optics express.
[23]
Silvio Bianchi,et al.
Hologram transmission through multi-mode optical fibers.
,
2011,
Optics express.
[24]
Sylvain Gigan,et al.
Image transmission through an opaque material.
,
2010,
Nature communications.
[25]
G. Lerosey,et al.
Controlling waves in space and time for imaging and focusing in complex media
,
2012,
Nature Photonics.
[26]
O. Katz,et al.
Noninvasive nonlinear focusing and imaging through strongly scattering turbid layers
,
2014,
1405.4826.
[27]
Bruce D. Hansche,et al.
Binary Computer Generated Holograms As Spatial Filters
,
1976,
Other Conferences.
[28]
E. G. van Putten,et al.
Focusing light through random photonic media by binary amplitude modulation.
,
2011,
Optics express.
[29]
A. Mosk,et al.
Focusing coherent light through opaque strongly scattering media.
,
2007,
Optics letters.
[30]
T. Wilson,et al.
Adaptive aberration correction in a confocal microscope
,
2002,
Proceedings of the National Academy of Sciences of the United States of America.