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References

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  1. I. S. Rez, Bull. Acad. Sciences, USSR, Phys. Ser. 31, 1949 (1967).
  2. J. J. O’Connor, M. A. Pietro, A. F. Armington, J. Crystal Growth 6, 346(1970).
    [CrossRef]
  3. A. F. Wells, J. Chem. Soc. 1622(1947).
  4. A. W. Schlueter, R. A. Jacobson, R. E. Rundle, Inorg. Chem. 5, 277(1966).
    [CrossRef]
  5. W. L. Bond, J. Appl. Phys. 36, 1674(1965).
    [CrossRef]
  6. L. Gampel, F. M. Johnson, J. Opt. Soc. Amer. 59, 72(1969).
    [CrossRef]
  7. For example, see A. Yariv, Quantum Electronics (Wiley, New York, 1967).
  8. D. A. Kleinman, Phys. Rev. 126, 1977(1962).
    [CrossRef]

1970 (1)

J. J. O’Connor, M. A. Pietro, A. F. Armington, J. Crystal Growth 6, 346(1970).
[CrossRef]

1969 (1)

L. Gampel, F. M. Johnson, J. Opt. Soc. Amer. 59, 72(1969).
[CrossRef]

1967 (1)

I. S. Rez, Bull. Acad. Sciences, USSR, Phys. Ser. 31, 1949 (1967).

1966 (1)

A. W. Schlueter, R. A. Jacobson, R. E. Rundle, Inorg. Chem. 5, 277(1966).
[CrossRef]

1965 (1)

W. L. Bond, J. Appl. Phys. 36, 1674(1965).
[CrossRef]

1962 (1)

D. A. Kleinman, Phys. Rev. 126, 1977(1962).
[CrossRef]

1947 (1)

A. F. Wells, J. Chem. Soc. 1622(1947).

Armington, A. F.

J. J. O’Connor, M. A. Pietro, A. F. Armington, J. Crystal Growth 6, 346(1970).
[CrossRef]

Bond, W. L.

W. L. Bond, J. Appl. Phys. 36, 1674(1965).
[CrossRef]

Gampel, L.

L. Gampel, F. M. Johnson, J. Opt. Soc. Amer. 59, 72(1969).
[CrossRef]

Jacobson, R. A.

A. W. Schlueter, R. A. Jacobson, R. E. Rundle, Inorg. Chem. 5, 277(1966).
[CrossRef]

Johnson, F. M.

L. Gampel, F. M. Johnson, J. Opt. Soc. Amer. 59, 72(1969).
[CrossRef]

Kleinman, D. A.

D. A. Kleinman, Phys. Rev. 126, 1977(1962).
[CrossRef]

O’Connor, J. J.

J. J. O’Connor, M. A. Pietro, A. F. Armington, J. Crystal Growth 6, 346(1970).
[CrossRef]

Pietro, M. A.

J. J. O’Connor, M. A. Pietro, A. F. Armington, J. Crystal Growth 6, 346(1970).
[CrossRef]

Rez, I. S.

I. S. Rez, Bull. Acad. Sciences, USSR, Phys. Ser. 31, 1949 (1967).

Rundle, R. E.

A. W. Schlueter, R. A. Jacobson, R. E. Rundle, Inorg. Chem. 5, 277(1966).
[CrossRef]

Schlueter, A. W.

A. W. Schlueter, R. A. Jacobson, R. E. Rundle, Inorg. Chem. 5, 277(1966).
[CrossRef]

Wells, A. F.

A. F. Wells, J. Chem. Soc. 1622(1947).

Yariv, A.

For example, see A. Yariv, Quantum Electronics (Wiley, New York, 1967).

Bull. Acad. Sciences, USSR (1)

I. S. Rez, Bull. Acad. Sciences, USSR, Phys. Ser. 31, 1949 (1967).

Inorg. Chem. (1)

A. W. Schlueter, R. A. Jacobson, R. E. Rundle, Inorg. Chem. 5, 277(1966).
[CrossRef]

J. Appl. Phys. (1)

W. L. Bond, J. Appl. Phys. 36, 1674(1965).
[CrossRef]

J. Chem. Soc. (1)

A. F. Wells, J. Chem. Soc. 1622(1947).

J. Crystal Growth (1)

J. J. O’Connor, M. A. Pietro, A. F. Armington, J. Crystal Growth 6, 346(1970).
[CrossRef]

J. Opt. Soc. Amer. (1)

L. Gampel, F. M. Johnson, J. Opt. Soc. Amer. 59, 72(1969).
[CrossRef]

Phys. Rev. (1)

D. A. Kleinman, Phys. Rev. 126, 1977(1962).
[CrossRef]

Other (1)

For example, see A. Yariv, Quantum Electronics (Wiley, New York, 1967).

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Figures (1)

Fig. 1
Fig. 1

Transmission characteristics of a 1.85-mm thick crystal of CsCuCl3 scanned on an infrared spectrophotometer. The instrument was equipped with germanium Brewster angle polarizers to obtain transmission data for both the ordinary (⊥) and extraordinary (‖) waves propagating normal to the c axis.

Equations (6)

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r = | 0 0 0 0 0 0 0 0 0 r 41 0 0 0 - r 41 0 0 0 0 |
( x 2 / n 0 2 ) + ( y 2 + n 0 2 ) + ( z 2 / n 0 2 ) + 2 r 41 E x y z + 2 ( - r 41 ) E y x z = 1 ,
1 n e 2 | θ = 45 = 1 2 ( 1 n o 2 + 1 n o 2 ) + r 41 E x .
Δ n e = ( n ) 3 r 41 E x / 2 ,
n = [ 2 n o 2 n e 2 / ( n o 2 + n e 2 ) ] 1 2 .
Γ = ( π / λ ) ( n ) 3 r 41 E x L

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