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Adaptive lenticular lens array using a hybrid liquid crystal-carbon nanotube nanophotonic device.

Won, K., Rajasekharan, R., Hands, P., Dai, Q., & Wilkinson, T. D. (2011). Adaptive lenticular lens array using a hybrid liquid crystal–carbon nanotube nanophotonic device. Optical Engineering, 50(5), 054002-054002.

Optical waveguides and switches based on periodic arrays of carbon nanotubes.

Butt, H., Dai, Q., Wilkinson, T. D., & Amaratunga, G. A. (2011, April). Optical waveguides and switches based on periodic arrays of carbon nanotubes. In 2011 Saudi International Electronics, Communications and Photonics Conference (SIECPC) (pp. 1-4). IEEE.

Nanophotonic Three-Dimensional Microscope.

Rajasekharan, R., Wilkinson, T. D., Hands, P. J., & Dai, Q. (2011). Nanophotonic three-dimensional microscope. Nano letters, 11(7), 2770-2773.

Enhanced reflection from arrays of silicon based inverted nanocones.

Butt, H., Dai, Q., Rajasekharan, R., Wilkinson, T. D., & Amaratunga, G. A. (2011). Enhanced reflection from arrays of silicon based inverted nanocones. Applied Physics Letters, 99(13).

Plasmonic Band Gaps and Waveguide Effects in Carbon Nanotube Arrays Based Metamaterials.

Butt, H., Dai, Q., Rajesekharan, R., Wilkinson, T. D., & Amaratunga, G. A. (2011). Plasmonic band gaps and waveguide effects in carbon nanotube arrays based metamaterials. ACS nano, 5(11), 9138-9143.

Fabrication of carbon nanotubes on interdigitated metal electrode for switchable nanophotonic devices.

Dai, Q., Butt, H., Rajasekharan, R., Wilkinson, T. D., & Amaratunga, G. A. (2012). Fabrication of carbon nanotubes on inter-digitated metal electrode for switchable nanophotonic devices. Progress In Electromagnetics Research, 127, 65-77.

Optimization of nanotube electrode geometry in a liquid crystal media from wavefront aberrations.

Rajasekharan<? A3B2 show,?>, R., Dai<? A3B2 show,?>, Q., Butt<? A3B2 show,?>, H., Won<? A3B2 show,?>, K., Wilkinson, A. S. P. L. B. J. Y. T. D., & Amaratunga, G. A. (2012). Optimization of nanotube electrode geometry in a liquid crystal media from wavefront aberrations. Applied Optics, 51(4), 422-428.

Can Nanotubes Make a Lens Array.

Rajasekharan, R., Butt, H., Dai, Q., Wilkinson, T. D., & Amaratunga, G. A. (2012). Can nanotubes make a lens array?. Advanced materials, 24(23), OP170-OP173.

Metamaterial filter for the near-visible spectrum.

Butt, H., Montelongo, Y., Butler, T., Rajesekharan, R., Dai, Q., Shiva‐Reddy, S. G., ... & Amaratunga, G. A. (2012). Carbon nanotube based high resolution holograms. Advanced materials, 24(44), OP331-OP336.

Negative index photonic crystal lenses based on carbon nanotube arrays.

Butt, H., Montelongo, Y., Butler, T., Rajesekharan, R., Dai, Q., Shiva‐Reddy, S. G., ... & Amaratunga, G. A. (2012). Carbon nanotube based high resolution holograms. Advanced materials, 24(44), OP331-OP336.