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1
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0031234572
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Constructing single and multiple helical microcoils and characterizing their performance as components of microinductors and microelectromagnets
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J. A. Rogers, R. J. Jackman, and G. M. Whitesides, “Constructing single and multiple helical microcoils and characterizing their performance as components of microinductors and microelectromagnets,” J. Microelectromech. Syst. 6,184-192 (1997).
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(1997)
J. Microelectromech. Syst.
, vol.6
, pp. 184-192
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Rogers, J.A.1
Jackman, R.J.2
Whitesides, G.M.3
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2
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0031555606
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Using microcontact printing to generate photomasks on the surface of optical fibers: A new method for producing in-fiber gratings
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J. A. Rogers, R. J. Jackman, J. L. Wagener, A. M. Vengsarkar, and G. M. Whitesides, “Using microcontact printing to generate photomasks on the surface of optical fibers: a new method for producing in-fiber gratings,” Appl. Phys. Lett. 70, 7-9 (1997).
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(1997)
Appl. Phys. Lett.
, vol.70
, pp. 7-9
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Rogers, J.A.1
Jackman, R.J.2
Wagener, J.L.3
Vengsarkar, A.M.4
Whitesides, G.M.5
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3
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0002420774
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Electrochemistry and soft lithography: A route to 3-D
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R. J. Jackman and G. M. Whitesides, “Electrochemistry and soft lithography: a route to 3-D,” Chem. Technol. 29, 18-30 (1999).
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(1999)
Chem. Technol.
, vol.29
, pp. 18-30
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Jackman, R.J.1
Whitesides, G.M.2
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5
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0005295917
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Sputter deposited piezoelectric fiber coatings for acousto-optic modulators
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G. R. Fox, C. A. P. Muller, N. Setter, N. H. Ky, and H. G. Limberger, “Sputter deposited piezoelectric fiber coatings for acousto-optic modulators,” J. Vac. Sci. Technol. A 14, 800-805 (1996).
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(1996)
J. Vac. Sci. Technol. A
, vol.14
, pp. 800-805
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Fox, G.R.1
Muller, C.A.P.2
Setter, N.3
Ky, N.H.4
Limberger, H.G.5
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6
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0033116154
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Electrically tunable efficient broadband long-period fiber grating filter
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A. Abramov, B. J. Eggleton, J. A. Rogers, R. P. Espindola, A. Hale, R. S. Windeler, and T. A. Strasser, “Electrically tunable efficient broadband long-period fiber grating filter,” IEEE Photon. Technol. Lett. 11, 445-447 (1999).
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(1999)
IEEE Photon. Technol. Lett.
, vol.11
, pp. 445-447
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Abramov, A.1
Eggleton, B.J.2
Rogers, J.A.3
Espindola, R.P.4
Hale, A.5
Windeler, R.S.6
Strasser, T.A.7
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7
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78649941328
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Wavelength tunable fiber Bragg grating devices based on sputter deposited resistive and piezoelectric coatings
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G. R. Fox, C. A. P. Muller, N. Setter, D. M. Costantini, N. H. Ky, and H. G. Limberger, “Wavelength tunable fiber Bragg grating devices based on sputter deposited resistive and piezoelectric coatings,” J. Vac. Sci. Technol. 15, 1791-1795 (1997).
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(1997)
J. Vac. Sci. Technol.
, vol.15
, pp. 1791-1795
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Fox, G.R.1
Muller, C.A.P.2
Setter, N.3
Costantini, D.M.4
Ky, N.H.5
Limberger, H.G.6
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8
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0032029013
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Efficient miniature fiber-optic tunable filter based on intracore Bragg grating and electrically resistive coating
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H. G. Limberger, N. H. Ky, D. M. Costantini, R. P. Salathe, C. A. P. Muller, and G. R. Fox, “Efficient miniature fiber-optic tunable filter based on intracore Bragg grating and electrically resistive coating,” IEEE Photon. Technol. Lett. 10, 361-363 (1998).
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(1998)
IEEE Photon. Technol. Lett.
, vol.10
, pp. 361-363
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Limberger, H.G.1
Ky, N.H.2
Costantini, D.M.3
Salathe, R.P.4
Muller, C.A.P.5
Fox, G.R.6
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9
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0001084211
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Dual on-fiber thin-film heaters for fiber gratings with independently adjustable chirp and wavelength
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J. A. Rogers, B. J. Eggleton, R. J. Jackman, G. R. Kowach, and T. A. Strasser, “Dual on-fiber thin-film heaters for fiber gratings with independently adjustable chirp and wavelength,” Opt. Lett. 24, 1328-1330 (1999).
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(1999)
Opt. Lett.
, vol.24
, pp. 1328-1330
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Rogers, J.A.1
Eggleton, B.J.2
Jackman, R.J.3
Kowach, G.R.4
Strasser, T.A.5
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10
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0032620856
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Distributed on-fiber thin film heaters for Bragg gratings with adjustable chirp
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J. A. Rogers, B. J. Eggleton, J. R. Pedrazzani, and T. A. Strasser, “Distributed on-fiber thin film heaters for Bragg gratings with adjustable chirp,” Appl. Phys. Lett. 74, 3131-3133 (1999).
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(1999)
Appl. Phys. Lett.
, vol.74
, pp. 3131-3133
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Rogers, J.A.1
Eggleton, B.J.2
Pedrazzani, J.R.3
Strasser, T.A.4
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11
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0032677537
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Electrically tunable, power efficient dispersion compensating fiber Bragg grating
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B. J. Eggleton, J. A. Rogers, P. S. Westbrook, and T. A. Strasser, “Electrically tunable, power efficient dispersion compensating fiber Bragg grating,” IEEE Photon. Technol. Lett. 11, 854-856 (1999).
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(1999)
IEEE Photon. Technol. Lett.
, vol.11
, pp. 854-856
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Eggleton, B.J.1
Rogers, J.A.2
Westbrook, P.S.3
Strasser, T.A.4
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13
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0032647297
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Dispersion compensation in a dynamic 20 Gbit/s nonlinear lightwave system using electrically tunable chirped fiber grating
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B. J. Eggleton, T. N. Nielsen, J. A. Rogers, P. S. Westbrook, T. A. Strasser, P. B. Hansen, and K. F. Dreyer, “Dispersion compensation in a dynamic 20 Gbit/s nonlinear lightwave system using electrically tunable chirped fiber grating,” Electron. Lett. 35, 832-833 (1999).
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(1999)
Electron. Lett.
, vol.35
, pp. 832-833
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Eggleton, B.J.1
Nielsen, T.N.2
Rogers, J.A.3
Westbrook, P.S.4
Strasser, T.A.5
Hansen, P.B.6
Dreyer, K.F.7
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14
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0034135730
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Fiber Bragg grating tunable dispersion compensator for dynamic post dispersion optimization at 40 Gb/s
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T. Nielsen, B. J. Eggleton, J. A. Rogers, P. S. Westbrook, and T. A. Strasser, “Fiber Bragg grating tunable dispersion compensator for dynamic post dispersion optimization at 40 Gb/s,” IEEE Photon. Technol. Lett. 12, 173-175 (2000).
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(2000)
IEEE Photon. Technol. Lett.
, vol.12
, pp. 173-175
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Nielsen, T.1
Eggleton, B.J.2
Rogers, J.A.3
Westbrook, P.S.4
Strasser, T.A.5
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16
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0032637147
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Comparison of fiber Bragg grating dispersion-compensators made with holographic and E-beam written phase masks
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S. J. Mihailov, F. Bilodeau, K. O. Hill, D. C. Johnson, J. Albert, D. Stryckman, and C. Shu, “Comparison of fiber Bragg grating dispersion-compensators made with holographic and E-beam written phase masks,” IEEE Photon. Technol. Lett. 11, 572-574 (1999).
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, vol.11
, pp. 572-574
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Mihailov, S.J.1
Bilodeau, F.2
Hill, K.O.3
Johnson, D.C.4
Albert, J.5
Stryckman, D.6
Shu, C.7
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17
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0033221439
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Tunable loss filter based on metal coated long period fiber grating
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D. M. Costantini, H. G. Limberger, R. P. Salathe, C. A. P. Muller, and S. A. Vasiliov, “Tunable loss filter based on metal coated long period fiber grating,” IEEE Photon. Technol. Lett. 11, 1458-1460 (1999).
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, vol.11
, pp. 1458-1460
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Costantini, D.M.1
Limberger, H.G.2
Salathe, R.P.3
Muller, C.A.P.4
Vasiliov, S.A.5
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24
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0003474751
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2nd ed. (Cambridge U. Press, Cambridge, UK
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W. H. Press, S. A. Teukolsky, W. T. Vetterling, and B. P. Flannery, Numerical Recipes, 2nd ed. (Cambridge U. Press, Cambridge, UK, 1992).
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Numerical Recipes
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Press, W.H.1
Teukolsky, S.A.2
Vetterling, W.T.3
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Coupled-wave theory of distributed feedback lasers
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Er3 + Yb3+ codoped fiber distributed-feedback laser
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J. T. Kringlebotn, J.-L. Archambault, L. Reekie, and D. N. Payne, “Er3 + Yb3+ codoped fiber distributed-feedback laser,” Opt. Lett. 19, 2101-2103 (1994).
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0028499688
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Long periodic superstructure Bragg gratings in optical fibers
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Eggleton, B.J.1
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29
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0033347509
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Temperature stabilized operation of tunable fiber grating devices that use distributed on-fiber thin film heaters
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J. A. Rogers, B. J. Eggleton, and T. A. Strasser, “Temperature stabilized operation of tunable fiber grating devices that use distributed on-fiber thin film heaters,” Electron. Lett. 35, 2052-2053 (1999).
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Electron. Lett.
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Rogers, J.A.1
Eggleton, B.J.2
Strasser, T.A.3
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