Two-photon polymerization initiators for three-dimensional optical data storage and microfabrication

Two-photon excitation provides a means of activating chemical or physical processes with high spatial resolution in three dimensions and has made possible the development of three-dimensional fluorescence imaging, optical data storage, and lithographic microfabrication. These applications take advantage of the fact that the two-photon absorption probability depends quadratically on intensity, so under tight-focusing conditions, the absorption is confined at the focus to a volume of order λ3 (where λ is the laser wavelength). Any subsequent process, such as fluorescence or a photoinduced chemical reaction, is also localized in this small volume. Although three-dimensional data storage and microfabrication have been illustrated using two-photon-initiated polymerization of resins incorporating conventional ultraviolet-absorbing initiators, such photopolymer systems exhibit low photosensitivity as the initiators have small two-photon absorption cross-sections (δ). Consequently, this approach requires high laser power, and its widespread use remains impractical. Here we report on a class of π;-conjugated compounds that exhibit large δ (as high as 1, 250 × 10−50 cm4 s per photon) and enhanced two-photon sensitivity relative to ultraviolet initiators. Two-photon excitable resins based on these new initiators have been developed and used to demonstrate a scheme for three-dimensional data storage which permits fluorescent and refractive read-out, and the fabrication of three-dimensional micro-optical and micromechanical structures, including photonic-bandgap-type structures.

[1]  D A Parthenopoulos,et al.  Three-Dimensional Optical Storage Memory , 1989, Science.

[2]  James H. Strickler,et al.  Two-photon excitation in laser scanning fluorescence microscopy , 1991, Other Conferences.

[3]  W. Webb,et al.  Design of organic molecules with large two-photon absorption cross sections. , 1998, Science.

[4]  W. Denk,et al.  Two-photon laser scanning fluorescence microscopy. , 1990, Science.

[5]  R.T. Chen,et al.  Compression-molded three-dimensional tapered polymeric waveguides for low-loss optoelectronic packaging , 1997, IEEE Photonics Technology Letters.

[6]  J. Bustillo,et al.  Surface micromachining for microelectromechanical systems , 1998, Proc. IEEE.

[7]  Wolfgang Ehrfeld,et al.  Fabrication of photonic crystals by deep x-ray lithography , 1997 .

[8]  D. Larkman,et al.  Photonic crystals , 1999, International Conference on Transparent Optical Networks (Cat. No. 99EX350).

[9]  S. Kawata,et al.  Three-dimensional microfabrication with two-photon-absorbed photopolymerization. , 1997, Optics letters.

[10]  James H. Strickler,et al.  Two-photon lithography for microelectronic application , 1992, Advanced Lithography.

[11]  J. Strickler,et al.  Three-dimensional optical data storage in refractive media by two-photon point excitation. , 1991, Optics letters.

[12]  M. Razeghi,et al.  InAsSbP-InAsSb-InAs diode lasers emitting at 3.2 /spl mu/m grown by metal-organic chemical vapor deposition , 1997, IEEE Photonics Technology Letters.

[13]  G. Odian,et al.  Principles of polymerization , 1981 .