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Integration of polymer microlens array at fiber bundle extremity by photopolymerization |
Optics Express, Vol. 19, Issue 6, pp. 4805-4814 (2011)
http://dx.doi.org/10.1364/OE.19.004805
Acrobat PDF (1352 KB)
Abstract
We present a novel route to directly integrate an array of microlenses at the extremity of an optical fiber bundle. The method is based on photopolymerization at the end of the fiber. The method is based on the control of exposure dose and volume of the deposited droplet of photopolymerizable formulation. Optical properties of the integrated microlenses are discussed on the basis of FDTD calculations.
© 2011 OSA
1. Introduction
G. Lippmann, “Epreuves reversibles donnant la sensation du relief,” J. Phys. Theor. Appl. 7(1), 821–825 (1908). [CrossRef]
J. W. Goodman, A. R. Dias, and L. M. Woody, “Fully parallel, high-speed incoherent optical method for performing discrete Fourier transforms,” Opt. Lett. 2(1), 1–3 (1978). [CrossRef] [PubMed]
J. D. Rees, “Non-Gaussian imaging properties of GRIN fiber lens arrays,” Appl. Opt. 21(6), 1009–1012 (1982). [CrossRef] [PubMed]
D. Daly, R. F. Stevens, M. C. Hutley, and N. Davues, “The manufacture of microlenses by melting photoresist,” Meas. Sci. Technol. 1(8), 759–766 (1990). [CrossRef]
M. He, X. C. Yuan, N. Q. Ngo, J. Bu, and S. H. Tao, “Low-cost and efficient coupling technique using reflowed sol-gel microlens,” Opt. Express 11(14), 1621–1627 (2003). [CrossRef] [PubMed]
H. Y. Lin, Y. H. Ho, J. H. Lee, K. Y. Chen, J. H. Fang, S. C. Hsu, M. K. Wei, H. Y. Lin, J. H. Tsai, and T. C. Wu, “Patterned microlens array for efficiency improvement of small-pixelated organic light-emitting devices,” Opt. Express 16(15), 11044–11051 (2008). [CrossRef] [PubMed]
J. Arai, H. Kawai, and F. Okano, “Microlens arrays for integral imaging system,” Appl. Opt. 45(36), 9066–9078 (2006). [CrossRef] [PubMed]
A. D. Ducharme, “Microlens diffusers for efficient laser speckle generation,” Opt. Express 15(22), 14573–14579 (2007). [CrossRef] [PubMed]
J. W. Pan, C. M. Wang, H. C. Lan, W. S. Sun, and J. Y. Chang, “Homogenized LED-illumination using microlens arrays for a pocket-sized projector,” Opt. Express 15(17), 10483–10491 (2007). [CrossRef] [PubMed]
D. Radtke, J. Duparré, U. D. Zeitner, and A. Tünnermann, “Laser lithographic fabrication and characterization of a spherical artificial compound eye,” Opt. Express 15(6), 3067–3077 (2007). [CrossRef] [PubMed]
M. J. Aernecke and D. R. Walt, “Optical-fiber arrays for vapor sensing,” Sens. Actuators B 142(2), 464–469 (2009). [CrossRef]
V. Guieu, F. Lagugné-Labarthet, L. Servant, D. Talaga, and N. Sojic, “Ultrasharp optical-fiber nanoprobe array for Raman local-enhancement imaging,” Small 4(1), 96–99 (2008). [CrossRef]
A. Chovin, P. Garrigue, P. Vinatier, and N. Sojic, “Development of an ordered array of optoelectrochemical individually readable sensors with submicrometer dimensions: application to remote electrochemiluminescence imaging,” Anal. Chem. 76(2), 357–364 (2004). [CrossRef] [PubMed]
C. Amatore, A. Chovin, P. Garrigue, L. Servant, N. Sojic, S. Szunerits, and L. Thouin, “Remote fluorescence imaging of dynamic concentration profiles with micrometer resolution using a coherent optical fiber bundle,” Anal. Chem. 76(24), 7202–7210 (2004). [CrossRef] [PubMed]
D. Daly, R. F. Stevens, M. C. Hutley, and N. Davues, “The manufacture of microlenses by melting photoresist,” Meas. Sci. Technol. 1(8), 759–766 (1990). [CrossRef]
M. He, X. C. Yuan, N. Q. Ngo, J. Bu, and S. H. Tao, “Low-cost and efficient coupling technique using reflowed sol-gel microlens,” Opt. Express 11(14), 1621–1627 (2003). [CrossRef] [PubMed]
D. Radtke, J. Duparré, U. D. Zeitner, and A. Tünnermann, “Laser lithographic fabrication and characterization of a spherical artificial compound eye,” Opt. Express 15(6), 3067–3077 (2007). [CrossRef] [PubMed]
V. Guieu, F. Lagugné-Labarthet, L. Servant, D. Talaga, and N. Sojic, “Ultrasharp optical-fiber nanoprobe array for Raman local-enhancement imaging,” Small 4(1), 96–99 (2008). [CrossRef]
H. Ottevaere, B. Volckaerts, J. Lamprecht, J. Schwider, A. Hermanne, I. Veretennicoff, and H. Thienpont, “Two-dimensional plastic microlens arrays by deep lithography with protons: fabrication and characterization,” J. Opt. A, Pure Appl. Opt. 4(4), 354–28 (2002). [CrossRef]
M. He, X. C. Yuan, N. Q. Ngo, J. Bu, and S. H. Tao, “Low-cost and efficient coupling technique using reflowed sol-gel microlens,” Opt. Express 11(14), 1621–1627 (2003). [CrossRef] [PubMed]
E. P. Chan and A. J. Crosby, “Fabricating microlens arrays by surface wrinkling,” Adv. Mater. 18(24), 3238–3242 (2006). [CrossRef]
O. J. Cayre and V. N. Paunov, “Fabrication of microlens arrays by gel trapping of self-assembled particle monolayers at the decane–water interface,” J. Mater. Chem. 14(22), 3300–3302 (2004). [CrossRef]
W. R. Cox, T. Chen, and D. J. Hayes, “Micro-optics fabrication by ink-jet printing,” Opt. Photonics News 32–35 (2001). [CrossRef]
M. Yaegashi, M. Kinoshita, A. Shishido, and T. Ikeda, “Direct fabrication of microlens arrays with polarization selectivity,” Adv. Mater. 19(6), 801–804 (2007). [CrossRef]
D. Daly, R. F. Stevens, M. C. Hutley, and N. Davues, “The manufacture of microlenses by melting photoresist,” Meas. Sci. Technol. 1(8), 759–766 (1990). [CrossRef]
D. Radtke, J. Duparré, U. D. Zeitner, and A. Tünnermann, “Laser lithographic fabrication and characterization of a spherical artificial compound eye,” Opt. Express 15(6), 3067–3077 (2007). [CrossRef] [PubMed]
H. Ottevaere, B. Volckaerts, J. Lamprecht, J. Schwider, A. Hermanne, I. Veretennicoff, and H. Thienpont, “Two-dimensional plastic microlens arrays by deep lithography with protons: fabrication and characterization,” J. Opt. A, Pure Appl. Opt. 4(4), 354–28 (2002). [CrossRef]
V. Guieu, F. Lagugné-Labarthet, L. Servant, D. Talaga, and N. Sojic, “Ultrasharp optical-fiber nanoprobe array for Raman local-enhancement imaging,” Small 4(1), 96–99 (2008). [CrossRef]
C. Amatore, A. Chovin, P. Garrigue, L. Servant, N. Sojic, S. Szunerits, and L. Thouin, “Remote fluorescence imaging of dynamic concentration profiles with micrometer resolution using a coherent optical fiber bundle,” Anal. Chem. 76(24), 7202–7210 (2004). [CrossRef] [PubMed]
J. R. Epstein and D. R. Walt, “Fluorescence-based fibre optic arrays: a universal platform for sensing,” Chem. Soc. Rev. 32(4), 203–214 (2003). [CrossRef] [PubMed]
D. R. Walt, “Fibre optic microarrays,” Chem. Soc. Rev. 39(1), 38–50 (2009). [CrossRef] [PubMed]
J. R. Epstein and D. R. Walt, “Fluorescence-based fibre optic arrays: a universal platform for sensing,” Chem. Soc. Rev. 32(4), 203–214 (2003). [CrossRef] [PubMed]
D. R. Walt, “Fibre optic microarrays,” Chem. Soc. Rev. 39(1), 38–50 (2009). [CrossRef] [PubMed]
- i) Each microlens is fabricated directly by the light emerging from a given core, allowing for an optimal alignment between fiber cores and microlenses;
- ii) Lens diameter in controlled within the [1–5
G. Lippmann, “Epreuves reversibles donnant la sensation du relief,” J. Phys. Theor. Appl. 7(1), 821–825 (1908). [CrossRef]
] μm rangeD. Daly, R. F. Stevens, M. C. Hutley, and N. Davues, “The manufacture of microlenses by melting photoresist,” Meas. Sci. Technol. 1(8), 759–766 (1990). [CrossRef]
- iii) Lens height can be tuned over a large range;
- iv) The full process is very simple and rapid (it lasts a couple of minutes);
- v) The process consumes few energy and materials (almost cost-free polymer). In particular exposure power is about hundred nanowatts with an exposure time of several seconds.
2. Experimental
R. Bachelot, C. Ecoffet, D. Deloeil, P. Royer, and D. J. Lougnot, “Integration of micrometer-sized polymer elements at the end of optical fibers by free-radical photopolymerization,” Appl. Opt. 40(32), 5860–5871 (2001). [CrossRef]
X. H. Zeng, J. Plain, S. Jradi, P. Renaud-Goud, R. Deturche, P. Royer, and R. Bachelot, “High speed sub-micrometric microscopy using optical polymer microlens,” Chin. Opt. Lett. 7, 901–903 (2009). [CrossRef]
- i) A freshly cleaved fiber (Fig. 1a) is optically characterized in terms of optical transmission and a drop of photopolymerizable formulation is deposited on its extremity. Drop height is reduced to obtain the thickness required. Figure 1b shows the profile of a resulting thin-layered droplet formulation as observed by optical microscopy. The volume of the drop is tailored under control using a micropipette. The green dashed line represents the interface between the solution and the fiber end facet while pink line highlights the profile of the droplet. The contact angle of the droplet on the fiber end was recorded and measured before the exposure. The inset photograph shows a typical droplet profile with a contact angle of 8.5 °.
- ii) The formulation is irradiated with a laser beam (λ=532nm, that was coupled into the other fiber extremity) for few seconds to transform the monomers into cross-linked polymer (Fig. 1c);
- iii) The fiber end is rinsed with ethanol for several minutes to remove the unpolymerized parts surrounding the polymer tips. The laser power coupled into the other end and emerging at the fiber extremity was measured before the deposition of the droplet. The inset images in Fig. 1a exhibits a typical light transmission property of the multi-cored fiber at wavelength of 532 nm with an incident intensity of 500 nW. In Fig. 1d, the green dashed rectangle highlights the obtained grown microlens array after rinsing. The inset on the bottom-left in Fig. 1d presents a typical optical transmission property after developing while being irradiated by a laser beam with λ=532nm and I = 50nW. The inset on the bottom right in Fig. 1d presents typical obtained polymer microlens array as observed by a scanning electron microscopy (SEM).
3. Analysis and discussions
3.1 Integration of microlens array
R. Bachelot, C. Ecoffet, D. Deloeil, P. Royer, and D. J. Lougnot, “Integration of micrometer-sized polymer elements at the end of optical fibers by free-radical photopolymerization,” Appl. Opt. 40(32), 5860–5871 (2001). [CrossRef]
X. H. Zeng, J. Plain, S. Jradi, P. Renaud-Goud, R. Deturche, P. Royer, and R. Bachelot, “High speed sub-micrometric microscopy using optical polymer microlens,” Chin. Opt. Lett. 7, 901–903 (2009). [CrossRef]
R. Bachelot, C. Ecoffet, D. Deloeil, P. Royer, and D. J. Lougnot, “Integration of micrometer-sized polymer elements at the end of optical fibers by free-radical photopolymerization,” Appl. Opt. 40(32), 5860–5871 (2001). [CrossRef]
3.2 FDTD simulation for photopolymerization process
3.3 Experimental results of optical transmission
3.4 FDTD simulation for optical properties of microlens array
D. Chandra, S. Yang, and P. C. Lin, “Strain responsive concave and convex microlens arrays,” Appl. Phys. Lett. 91(25), 251912-1-251912-3 (2007). [CrossRef]
4. Conclusion
Acknowledgements
References and links
G. Lippmann, “Epreuves reversibles donnant la sensation du relief,” J. Phys. Theor. Appl. 7(1), 821–825 (1908). [CrossRef] | |
J. W. Goodman, A. R. Dias, and L. M. Woody, “Fully parallel, high-speed incoherent optical method for performing discrete Fourier transforms,” Opt. Lett. 2(1), 1–3 (1978). [CrossRef] [PubMed] | |
J. D. Rees, “Non-Gaussian imaging properties of GRIN fiber lens arrays,” Appl. Opt. 21(6), 1009–1012 (1982). [CrossRef] [PubMed] | |
Y. Ishihara, and K. Tanigaki, “A high sensitivity IL-CCD image sensor with monolithic resin lens array”, In Proceedings of IEEE IEDM. Tech. Dig. 497–500 (1983). | |
D. Daly, R. F. Stevens, M. C. Hutley, and N. Davues, “The manufacture of microlenses by melting photoresist,” Meas. Sci. Technol. 1(8), 759–766 (1990). [CrossRef] | |
M. He, X. C. Yuan, N. Q. Ngo, J. Bu, and S. H. Tao, “Low-cost and efficient coupling technique using reflowed sol-gel microlens,” Opt. Express 11(14), 1621–1627 (2003). [CrossRef] [PubMed] | |
H. Y. Lin, Y. H. Ho, J. H. Lee, K. Y. Chen, J. H. Fang, S. C. Hsu, M. K. Wei, H. Y. Lin, J. H. Tsai, and T. C. Wu, “Patterned microlens array for efficiency improvement of small-pixelated organic light-emitting devices,” Opt. Express 16(15), 11044–11051 (2008). [CrossRef] [PubMed] | |
J. Arai, H. Kawai, and F. Okano, “Microlens arrays for integral imaging system,” Appl. Opt. 45(36), 9066–9078 (2006). [CrossRef] [PubMed] | |
A. D. Ducharme, “Microlens diffusers for efficient laser speckle generation,” Opt. Express 15(22), 14573–14579 (2007). [CrossRef] [PubMed] | |
J. W. Pan, C. M. Wang, H. C. Lan, W. S. Sun, and J. Y. Chang, “Homogenized LED-illumination using microlens arrays for a pocket-sized projector,” Opt. Express 15(17), 10483–10491 (2007). [CrossRef] [PubMed] | |
D. Radtke, J. Duparré, U. D. Zeitner, and A. Tünnermann, “Laser lithographic fabrication and characterization of a spherical artificial compound eye,” Opt. Express 15(6), 3067–3077 (2007). [CrossRef] [PubMed] | |
M. J. Aernecke and D. R. Walt, “Optical-fiber arrays for vapor sensing,” Sens. Actuators B 142(2), 464–469 (2009). [CrossRef] | |
V. Guieu, F. Lagugné-Labarthet, L. Servant, D. Talaga, and N. Sojic, “Ultrasharp optical-fiber nanoprobe array for Raman local-enhancement imaging,” Small 4(1), 96–99 (2008). [CrossRef] | |
A. Chovin, P. Garrigue, P. Vinatier, and N. Sojic, “Development of an ordered array of optoelectrochemical individually readable sensors with submicrometer dimensions: application to remote electrochemiluminescence imaging,” Anal. Chem. 76(2), 357–364 (2004). [CrossRef] [PubMed] | |
C. Amatore, A. Chovin, P. Garrigue, L. Servant, N. Sojic, S. Szunerits, and L. Thouin, “Remote fluorescence imaging of dynamic concentration profiles with micrometer resolution using a coherent optical fiber bundle,” Anal. Chem. 76(24), 7202–7210 (2004). [CrossRef] [PubMed] | |
E. P. Chan and A. J. Crosby, “Fabricating microlens arrays by surface wrinkling,” Adv. Mater. 18(24), 3238–3242 (2006). [CrossRef] | |
O. J. Cayre and V. N. Paunov, “Fabrication of microlens arrays by gel trapping of self-assembled particle monolayers at the decane–water interface,” J. Mater. Chem. 14(22), 3300–3302 (2004). [CrossRef] | |
W. R. Cox, T. Chen, and D. J. Hayes, “Micro-optics fabrication by ink-jet printing,” Opt. Photonics News 32–35 (2001). [CrossRef] | |
M. Yaegashi, M. Kinoshita, A. Shishido, and T. Ikeda, “Direct fabrication of microlens arrays with polarization selectivity,” Adv. Mater. 19(6), 801–804 (2007). [CrossRef] | |
H. Ottevaere, B. Volckaerts, J. Lamprecht, J. Schwider, A. Hermanne, I. Veretennicoff, and H. Thienpont, “Two-dimensional plastic microlens arrays by deep lithography with protons: fabrication and characterization,” J. Opt. A, Pure Appl. Opt. 4(4), 354–28 (2002). [CrossRef] | |
J. R. Epstein and D. R. Walt, “Fluorescence-based fibre optic arrays: a universal platform for sensing,” Chem. Soc. Rev. 32(4), 203–214 (2003). [CrossRef] [PubMed] | |
E. W. Adams, J. Ueberfeld, D. M. Ratner, B. R. O’Keefe, D. R. Walt, and P. H. Seeberger, “Encoded fiber optic microsphere arrays for probing protein-carbohydrate interactions,” Angew. Chem. 115(43), 5475–5478 (2003). [CrossRef] | |
D. R. Walt, T. M. Blicharz, R. B. Hayman, D. M. Rissin, M. Bowden, W. L. Siqueira, E. J. Helmerhorst, N. Grand-Pierre, F. G. Oppenheim, J. S. Bhatia, F. F. Little, and J. S. Brody, “Microsensor arrays for saliva diagnostics,” Ann. N. Y. Acad. Sci. 1098(1), 389–400 (2007). [CrossRef] [PubMed] | |
C. N. LaFratta and D. R. Walt, “Very high density sensing arrays,” Chem. Rev. 108(2), 614–637 (2008). [CrossRef] [PubMed] | |
D. R. Walt, “Fibre optic microarrays,” Chem. Soc. Rev. 39(1), 38–50 (2009). [CrossRef] [PubMed] | |
R. Bachelot, C. Ecoffet, D. Deloeil, P. Royer, and D. J. Lougnot, “Integration of micrometer-sized polymer elements at the end of optical fibers by free-radical photopolymerization,” Appl. Opt. 40(32), 5860–5871 (2001). [CrossRef] | |
X. H. Zeng, J. Plain, S. Jradi, P. Renaud-Goud, R. Deturche, P. Royer, and R. Bachelot, “High speed sub-micrometric microscopy using optical polymer microlens,” Chin. Opt. Lett. 7, 901–903 (2009). [CrossRef] | |
D. Chandra, S. Yang, and P. C. Lin, “Strain responsive concave and convex microlens arrays,” Appl. Phys. Lett. 91(25), 251912-1-251912-3 (2007). [CrossRef] |
OCIS Codes
(040.1240) Detectors : Arrays
(060.2340) Fiber optics and optical communications : Fiber optics components
(060.2350) Fiber optics and optical communications : Fiber optics imaging
(160.5470) Materials : Polymers
ToC Category:
Fiber Optics and Optical Communications
History
Original Manuscript: October 20, 2010
Revised Manuscript: February 14, 2011
Manuscript Accepted: February 15, 2011
Published: February 28, 2011
Citation
Xinhua Zeng, Jérôme Plain, Safi Jradi, Claire Darraud, Fréderic Louradour, Renaud Bachelot, and Pascal Royer, "Integration of polymer microlens array at fiber bundle extremity by photopolymerization," Opt. Express 19, 4805-4814 (2011)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-19-6-4805
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References
- G. Lippmann, “Epreuves reversibles donnant la sensation du relief,” J. Phys. Theor. Appl. 7(1), 821–825 (1908). [CrossRef]
- J. W. Goodman, A. R. Dias, and L. M. Woody, “Fully parallel, high-speed incoherent optical method for performing discrete Fourier transforms,” Opt. Lett. 2(1), 1–3 (1978). [CrossRef] [PubMed]
- J. D. Rees, “Non-Gaussian imaging properties of GRIN fiber lens arrays,” Appl. Opt. 21(6), 1009–1012 (1982). [CrossRef] [PubMed]
- Y. Ishihara, and K. Tanigaki, “A high sensitivity IL-CCD image sensor with monolithic resin lens array”, In Proceedings of IEEE IEDM. Tech. Dig. 497–500 (1983).
- D. Daly, R. F. Stevens, M. C. Hutley, and N. Davues, “The manufacture of microlenses by melting photoresist,” Meas. Sci. Technol. 1(8), 759–766 (1990). [CrossRef]
- M. He, X. C. Yuan, N. Q. Ngo, J. Bu, and S. H. Tao, “Low-cost and efficient coupling technique using reflowed sol-gel microlens,” Opt. Express 11(14), 1621–1627 (2003). [CrossRef] [PubMed]
- H. Y. Lin, Y. H. Ho, J. H. Lee, K. Y. Chen, J. H. Fang, S. C. Hsu, M. K. Wei, H. Y. Lin, J. H. Tsai, and T. C. Wu, “Patterned microlens array for efficiency improvement of small-pixelated organic light-emitting devices,” Opt. Express 16(15), 11044–11051 (2008). [CrossRef] [PubMed]
- J. Arai, H. Kawai, and F. Okano, “Microlens arrays for integral imaging system,” Appl. Opt. 45(36), 9066–9078 (2006). [CrossRef] [PubMed]
- A. D. Ducharme, “Microlens diffusers for efficient laser speckle generation,” Opt. Express 15(22), 14573–14579 (2007). [CrossRef] [PubMed]
- J. W. Pan, C. M. Wang, H. C. Lan, W. S. Sun, and J. Y. Chang, “Homogenized LED-illumination using microlens arrays for a pocket-sized projector,” Opt. Express 15(17), 10483–10491 (2007). [CrossRef] [PubMed]
- D. Radtke, J. Duparré, U. D. Zeitner, and A. Tünnermann, “Laser lithographic fabrication and characterization of a spherical artificial compound eye,” Opt. Express 15(6), 3067–3077 (2007). [CrossRef] [PubMed]
- M. J. Aernecke and D. R. Walt, “Optical-fiber arrays for vapor sensing,” Sens. Actuators B 142(2), 464–469 (2009). [CrossRef]
- V. Guieu, F. Lagugné-Labarthet, L. Servant, D. Talaga, and N. Sojic, “Ultrasharp optical-fiber nanoprobe array for Raman local-enhancement imaging,” Small 4(1), 96–99 (2008). [CrossRef]
- A. Chovin, P. Garrigue, P. Vinatier, and N. Sojic, “Development of an ordered array of optoelectrochemical individually readable sensors with submicrometer dimensions: application to remote electrochemiluminescence imaging,” Anal. Chem. 76(2), 357–364 (2004). [CrossRef] [PubMed]
- C. Amatore, A. Chovin, P. Garrigue, L. Servant, N. Sojic, S. Szunerits, and L. Thouin, “Remote fluorescence imaging of dynamic concentration profiles with micrometer resolution using a coherent optical fiber bundle,” Anal. Chem. 76(24), 7202–7210 (2004). [CrossRef] [PubMed]
- E. P. Chan and A. J. Crosby, “Fabricating microlens arrays by surface wrinkling,” Adv. Mater. 18(24), 3238–3242 (2006). [CrossRef]
- O. J. Cayre and V. N. Paunov, “Fabrication of microlens arrays by gel trapping of self-assembled particle monolayers at the decane–water interface,” J. Mater. Chem. 14(22), 3300–3302 (2004). [CrossRef]
- W. R. Cox, T. Chen, and D. J. Hayes, “Micro-optics fabrication by ink-jet printing,” Opt. Photonics News 32–35 (2001). [CrossRef]
- M. Yaegashi, M. Kinoshita, A. Shishido, and T. Ikeda, “Direct fabrication of microlens arrays with polarization selectivity,” Adv. Mater. 19(6), 801–804 (2007). [CrossRef]
- H. Ottevaere, B. Volckaerts, J. Lamprecht, J. Schwider, A. Hermanne, I. Veretennicoff, and H. Thienpont, “Two-dimensional plastic microlens arrays by deep lithography with protons: fabrication and characterization,” J. Opt. A, Pure Appl. Opt. 4(4), 354–28 (2002). [CrossRef]
- J. R. Epstein and D. R. Walt, “Fluorescence-based fibre optic arrays: a universal platform for sensing,” Chem. Soc. Rev. 32(4), 203–214 (2003). [CrossRef] [PubMed]
- E. W. Adams, J. Ueberfeld, D. M. Ratner, B. R. O’Keefe, D. R. Walt, and P. H. Seeberger, “Encoded fiber optic microsphere arrays for probing protein-carbohydrate interactions,” Angew. Chem. 115(43), 5475–5478 (2003). [CrossRef]
- D. R. Walt, T. M. Blicharz, R. B. Hayman, D. M. Rissin, M. Bowden, W. L. Siqueira, E. J. Helmerhorst, N. Grand-Pierre, F. G. Oppenheim, J. S. Bhatia, F. F. Little, and J. S. Brody, “Microsensor arrays for saliva diagnostics,” Ann. N. Y. Acad. Sci. 1098(1), 389–400 (2007). [CrossRef] [PubMed]
- C. N. LaFratta and D. R. Walt, “Very high density sensing arrays,” Chem. Rev. 108(2), 614–637 (2008). [CrossRef] [PubMed]
- D. R. Walt, “Fibre optic microarrays,” Chem. Soc. Rev. 39(1), 38–50 (2009). [CrossRef] [PubMed]
- R. Bachelot, C. Ecoffet, D. Deloeil, P. Royer, and D. J. Lougnot, “Integration of micrometer-sized polymer elements at the end of optical fibers by free-radical photopolymerization,” Appl. Opt. 40(32), 5860–5871 (2001). [CrossRef]
- X. H. Zeng, J. Plain, S. Jradi, P. Renaud-Goud, R. Deturche, P. Royer, and R. Bachelot, “High speed sub-micrometric microscopy using optical polymer microlens,” Chin. Opt. Lett. 7, 901–903 (2009). [CrossRef]
- D. Chandra, S. Yang, and P. C. Lin, “Strain responsive concave and convex microlens arrays,” Appl. Phys. Lett. 91(25), 251912-1-251912-3 (2007). [CrossRef]
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