Periodically poled materials continue to be of great interest due to their applications in both bulk nonlinear optics and all-optical processing systems. Many groups continue to explore alternative techniques to lithographic surface electrodes for defining the domain pattern of the poled crystal. The key objectives of these studies are to reduce the minimum domain size, produce uniformity in the domain structures and improve the cost effectiveness and speed of fabrication. We report progress on an investigation into poling lithium niobate using topographical electrode structures. The structures have been laser machined into the surfaces of 500 µm thick z-cut lithium niobate crystals by various laser sources (355 nm YAG laser, 255 nm copper vapour laser, and 800 nm femtosecond laser). We will present a simple electrostatic model of the fields induced by topographical structures which indicates that there is advantages and also limitations in using this technique, in comparison to conventional surface electrodes. Good quality domain structures with periods greater than 20 µm can be routinely fabricated using this method. Moving to thinner wafers, and using insulating and conducting layers in conjunction with laser processing, techniques should enable smaller periods to be achieved while maintaining the advantages of speed and cost effectiveness of using laser processing.

1.
Miller
G. D.
,
Batchko
R. G.
,
Tulloch
W. M.
,
Weise
D. R.
,
Fejer
M. M.
, and
Byer
R. L.
42%-efficient single-pass cw second-harmonic generationin periodically poled lithium niobate
.
Optics letters
, Vol.
22
, No.
24
, December 15,
1997
.
2.
Xiuping
Xie;
Schober
,
A.M.
;
Langrock
,
C.V.
;
Roussev
,
R.V.
;
Kurz
,
J.
;
Fejer
,
M.M.
Optical parametric generation in lithium niobate waveguides
.
Conference on Lasers and Electro-optics (CLEO)
. Volume
1
,
2004
.
3.
Houe
M.
and
Townsend
P. D.
Thermal polarization reversal of lithium niobate
.
Applied Physics Letters
Vol.
66
, No.
20
, May 15
1995
.
4.
Dierolf
V.
and
Sandmann
C.
Direct-write method for domain inversion patterns in LiNbO3
.
Applied Physics Letters
, Vol.
84
, No.
20
, 17 May
2004
.
5.
Mohageg
M.
,
Strekalov
D. V.
,
Savchenkov
A. A.
,
Matsko
A. B.
,
Ilchenko
V. S.
, and
Maleki
L.
,
Calligraphic poling of Lithium Niobate
,
Optics Express
13
,
2005
.
6.
Reich
M.
,
Korte F.
Fallnich
C.,
Welling
H.
,
Tunnermann
A.
Electrode Geometries for periodic poling of ferroelectrics materials
.
Optics Letters
Vol.
23
, No.
23
, December 1
1998
.
7.
Engelbrecht
M.
,
Korte
F.
,
Koch
J.
,
Wandt
D.
,
Fallnich
C.
Femtosecond rapid prototyping technique for patterning of lithium niobate samples
.
Advanced Solid-State Photonics (ASSP) conference
,
2005
, paper ref. MB5.
8.
Miller
G. D.
Periodically poled lithium niobate: Modelling, fabrication, and nonlinear optical performance
PhD thesis.
Stanford
.
1998
This content is only available via PDF.
You do not currently have access to this content.