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References

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  1. P. W. Baumeister, Appl. Opt. 21, 2965 (1982).
    [CrossRef] [PubMed]
  2. P. W. Baumeister, “Bandpass Design,” in Optical Interference Coating Technology—Lecture Notes for a Five-Day Short Course Engineering 823.17 (U. California at Los Angeles, University Extension, 1977), Chap. 9.
  3. L. Young, IEEE Trans. Microwave Theory Tech. MTT-10, 340 (1962).
  4. G. Matthaei, L. Young, E. Jones, Microwave Filters, Impedance Matching Networks, and Coupling Structures (McGraw-Hill, New York, 1964), p. 286.

1982 (1)

1962 (1)

L. Young, IEEE Trans. Microwave Theory Tech. MTT-10, 340 (1962).

Baumeister, P. W.

P. W. Baumeister, Appl. Opt. 21, 2965 (1982).
[CrossRef] [PubMed]

P. W. Baumeister, “Bandpass Design,” in Optical Interference Coating Technology—Lecture Notes for a Five-Day Short Course Engineering 823.17 (U. California at Los Angeles, University Extension, 1977), Chap. 9.

Jones, E.

G. Matthaei, L. Young, E. Jones, Microwave Filters, Impedance Matching Networks, and Coupling Structures (McGraw-Hill, New York, 1964), p. 286.

Matthaei, G.

G. Matthaei, L. Young, E. Jones, Microwave Filters, Impedance Matching Networks, and Coupling Structures (McGraw-Hill, New York, 1964), p. 286.

Young, L.

L. Young, IEEE Trans. Microwave Theory Tech. MTT-10, 340 (1962).

G. Matthaei, L. Young, E. Jones, Microwave Filters, Impedance Matching Networks, and Coupling Structures (McGraw-Hill, New York, 1964), p. 286.

Appl. Opt. (1)

IEEE Trans. Microwave Theory Tech. (1)

L. Young, IEEE Trans. Microwave Theory Tech. MTT-10, 340 (1962).

Other (2)

G. Matthaei, L. Young, E. Jones, Microwave Filters, Impedance Matching Networks, and Coupling Structures (McGraw-Hill, New York, 1964), p. 286.

P. W. Baumeister, “Bandpass Design,” in Optical Interference Coating Technology—Lecture Notes for a Five-Day Short Course Engineering 823.17 (U. California at Los Angeles, University Extension, 1977), Chap. 9.

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Tables (1)

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Table I Constants Bi,p and bi,p for the ith Section of the Bandpass with p Cavities as Appearing in Eq. (1)

Equations (3)

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V i , p = B i , p 10 ( b i , p η ) ,
η = log V max ,
V 0 = 0.655 10 ( 0.0533 10.5 ) = 2.38

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