Fabrication of GRIN microstructures by two-photon lithography

封面

如何引用文章

全文:

开放存取 开放存取
受限制的访问 ##reader.subscriptionAccessGranted##
受限制的访问 订阅存取

详细

The method of two-photon lithography is used to fabricate GRIN microstructures. Test rectangular structures with sizes 25 × 25 × 3 micrometers were used with varying laser intensity by linear or gaussian distribution in one dimension. The resulting refractive index has been tuned in the range of 0.03. The suggested method can be applied to produce arbitrarily shaped 3D GRIN micro-optical elements.

作者简介

I. Soboleva

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

V. Bessonov

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

A. Fedyanin

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

M. Aparin

Lomonosov Moscow State University

编辑信件的主要联系方式.
Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

T. Baluyan

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

M. Sharipova

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

M. Sirotin

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

E. Lyubin

Lomonosov Moscow State University

Email: aparin@nanolab.phys.msu.ru
Russia, 119991, Moscow

参考

  1. Gomez-Reino C., Perez M., Bao C. Gradient-index optics: fundamentals and applications. Springer, 2002. 239 p.
  2. Hwang Y., Phillips N., Dale E.O. et al. // Opt. Express. 2022. V. 30. No. 8. P. 12294.
  3. Gomez-Reino C., Perez M.V., Bao C., Flores-Arias T.M. // Laser Photon. Rev. 2008. V. 2. No. 3. P. 203.
  4. Kundal S., Bhatnagar A., Sharma R. Optical and wireless technologies, Springer, 2022. 443 p.
  5. Pickering M.A., Taylor R.L., Moore D.T. // Appl. Opt. 1986. V. 25. No. 19. P. 3364.
  6. Ohmi S., Sakai H., Asahara Y. et al. // Appl. Opt. 1988. V. 27. No. 3. P. 496.
  7. Sinai P. // Appl. Opt. 1971. V. 10. No. 1. P. 99.
  8. Liu J.H., Yang P.C., Chiu Y.H. // J. Polym. Sci. A. 2006. V. 44. No. 20. P. 5933.
  9. Liu J.H., Chiu Y.H. // Opt. Lett. 2009. V. 34. No. 9. P. 1393.
  10. Mingareev I., Kang M., Truman M. et al. // Opt. Laser Technol. 2020. V. 126. Art. No. 106058.
  11. Dylla-Spears R., Yee T.D., Sasan K. et al. // Sci. Advances. 2020. V. 6. No. 47. Art. No. eabc7429.
  12. Mao M., He J., Li X. et al. // Micromachines. 2017. V. 8. No. 4. P. 113.
  13. Sharipova M.I., Baluyan T.G., Abrashitova K.A. et al. // Opt. Mater. Express. 2021. V. 11. No. 2. P. 371.
  14. Zhou X., Hou Y., Lin J. // AIP Advances. 2005. V. 5. No. 3. Art. No. 030701.
  15. Ocier R.C., Richards C.A., Bacon-Brown D.A. et al. // Light Sci. Appl. 2020. V. 9. Art. No. 196.
  16. Žukauskas A., Matulaitienė I., Paipulas D. et al. // Laser Photon. Rev. 2015. V. 9. No. 6. P. 706.
  17. Pertoldi L., Zega V., Comi C., Osellame R. // J. Appl. Phys. 2020. V. 128. No. 17. Art. No. 175102.
  18. Drexler W., Fujimoto J.G. Optical coherence tomography. Technology and applications. Springer, 2008. 1327 p.
  19. Sirotin M.A., Romodina M.N., Lyubin E.V. et al. // Biomed. Opt. Express. 2022. V. 13. No. 1. P. 14.
  20. Safronov K.R., Gulkin D.N., Antropov I.M. et al. // ACS Nano. 2020. V. 14. No. 8. P. 10428.
  21. Safronov K.R., Bessonov V.O., Akhremenkov D.V. et al. // Laser Photon. Rev. 2022. V. 16. No. 4. Art. No. 2100542.
  22. Giessibl F.J. // Rev. Mod. Phys. 2003. V. 75. No. 3. P. 949.

补充文件

附件文件
动作
1. JATS XML
2.

下载 (341KB)
3.

下载 (60KB)
4.

下载 (918KB)
5.

下载 (949KB)

版权所有 © М.Д. Апарин, Т.Г. Балуян, М.И. Шарипова, М.А. Сиротин, Е.В. Любин, И.В. Соболева, В.О. Бессонов, А.А. Федянин, 2023

##common.cookie##