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Graphene-Based Ultrathin Flat Lenses.

Kong, X. T., Khan, A. A., Kidambi, P. R., Deng, S., Yetisen, A. K., Dlubak, B., ... & Butt, H. (2015). Graphene-based ultrathin flat lenses. Acs Photonics2(2), 200-207.

Graphene plasmon propagation on corrugated silicon substrates,

Kong, X. T., Bai, B., & Dai, Q. (2014). Graphene plasmon propagation on corrugated silicon substrates. Optics letters40(1), 1-4.

Broadly tunable graphene plasmons using an ion-gel top gate with low control voltage,

Hu, H., Zhai, F., Hu, D., Li, Z., Bai, B., Yang, X., & Dai, Q. (2015). Broadly tunable graphene plasmons using an ion-gel top gate with low control voltage. Nanoscale7(46), 19493-19500.

Multiwall carbon nanotube microcavity arrays.

Ahmed, R., Rifat, A. A., Yetisen, A. K., Dai, Q., Yun, S. H., & Butt, H. (2016). Multiwall carbon nanotube microcavity arrays. Journal of Applied Physics119(11).

Solution-processed photodetectors based on organic-inorganic hybrid perovskite and nanocrystalline graphite.

Wang, Y., Xia, Z., Du, S., Yuan, F., Li, Z., Li, Z., ... & Zhou, H. (2016). Solution-processed photodetectors based on organic–inorganic hybrid perovskite and nanocrystalline graphite. Nanotechnology27(17), 175201.

Tunable Electronic Transport Properties of 2D Layered Double Hydroxide Crystalline Microsheets with Varied Chemical Compositions.

Zhao, Y., Hu, H., Yang, X., Yan, D., & Dai, Q. (2016). Tunable Electronic Transport Properties of 2D Layered Double Hydroxide Crystalline Microsheets with Varied Chemical Compositions. Small (Weinheim an der Bergstrasse, Germany)12(33), 4471-4476.

Far-field nanoscale infrared spectroscopy of vibrational fingerprints of molecules with graphene plasmons.

Hu, H., Yang, X., Zhai, F., Hu, D., Liu, R., Liu, K., ... & Dai, Q. (2016). Far-field nanoscale infrared spectroscopy of vibrational fingerprints of molecules with graphene plasmons. Nature communications7(1), 12334.

Graphene actively Q-switched lasers.

Li, D., Xue, H., Qi, M., Wang, Y., Aksimsek, S., Chekurov, N., ... & Sun, Z. (2017). Graphene actively Q-switched lasers. 2D Materials4(2), 025095.

单晶金纳米真空隧道结的超快电子发射研究

刘海洋,宋轶环,周圣涵,陈科,李振军 & 李驰.(2022).单晶金纳米真空隧道结的超快电子发射研究.真空电子技术,(06),36-42.https://doi.org/10.16540/j.cnki.cn11-2485/tn.2022.06.05.

Photon-Pair Generation with a 100 nm Thick Carbon Nanotube Film.

Lee, K. F., Tian, Y., Yang, H., Mustonen, K., Martinez, A., Dai, Q., ... & Sun, Z. (2017). Photon‐Pair Generation with a 100 nm Thick Carbon Nanotube Film. Advanced Materials29(24), 1605978.