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  1. F. J. Leonberger, C. E. Woodward, R. A. Becker, Appl. Phys. Lett. 40, 565 (1982).
    [CrossRef]
  2. H. F. Taylor, Proc. IEEE 63, 1524 (1979).
    [CrossRef]
  3. C. L. Chang, C. S. Tsai, Appl. Phys. Lett. 43, 22 (1983).
    [CrossRef]
  4. C. M. Verber, R. P. Kenan, J. R. Busch, Appl. Opt. 20, 1626 (1981).
    [CrossRef] [PubMed]
  5. From curves prepared by S. KingsleyBattelle Columbus Laboratories, private communicationbased upon W. K. Pratt, Laser Communication Systems (Wiley, New York, 1969).

1983 (1)

C. L. Chang, C. S. Tsai, Appl. Phys. Lett. 43, 22 (1983).
[CrossRef]

1982 (1)

F. J. Leonberger, C. E. Woodward, R. A. Becker, Appl. Phys. Lett. 40, 565 (1982).
[CrossRef]

1981 (1)

1979 (1)

H. F. Taylor, Proc. IEEE 63, 1524 (1979).
[CrossRef]

Becker, R. A.

F. J. Leonberger, C. E. Woodward, R. A. Becker, Appl. Phys. Lett. 40, 565 (1982).
[CrossRef]

Busch, J. R.

Chang, C. L.

C. L. Chang, C. S. Tsai, Appl. Phys. Lett. 43, 22 (1983).
[CrossRef]

Kenan, R. P.

Kingsley, S.

From curves prepared by S. KingsleyBattelle Columbus Laboratories, private communicationbased upon W. K. Pratt, Laser Communication Systems (Wiley, New York, 1969).

Leonberger, F. J.

F. J. Leonberger, C. E. Woodward, R. A. Becker, Appl. Phys. Lett. 40, 565 (1982).
[CrossRef]

Taylor, H. F.

H. F. Taylor, Proc. IEEE 63, 1524 (1979).
[CrossRef]

Tsai, C. S.

C. L. Chang, C. S. Tsai, Appl. Phys. Lett. 43, 22 (1983).
[CrossRef]

Verber, C. M.

Woodward, C. E.

F. J. Leonberger, C. E. Woodward, R. A. Becker, Appl. Phys. Lett. 40, 565 (1982).
[CrossRef]

Appl. Opt. (1)

Appl. Phys. Lett. (2)

F. J. Leonberger, C. E. Woodward, R. A. Becker, Appl. Phys. Lett. 40, 565 (1982).
[CrossRef]

C. L. Chang, C. S. Tsai, Appl. Phys. Lett. 43, 22 (1983).
[CrossRef]

Proc. IEEE (1)

H. F. Taylor, Proc. IEEE 63, 1524 (1979).
[CrossRef]

Other (1)

From curves prepared by S. KingsleyBattelle Columbus Laboratories, private communicationbased upon W. K. Pratt, Laser Communication Systems (Wiley, New York, 1969).

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Figures (2)

Fig. 1
Fig. 1

Schematic of a 4-bit integrated optic D/A converter. The interdigital electrode pattern is on a planar electrooptic waveguide. The voltage dividers are set to produce diffraction efficiencies which differ by successive powers of two.

Fig. 2
Fig. 2

Normalized analog output vs digital input for a 6-bit D/A. The data are for dc operation.

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