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学术成果

Rigorous numerical modeling of scattering-type scanning near-field optical microscopy and spectroscopy.

Chen, X., Lo, C. F. B., Zheng, W., Hu, H., Dai, Q., & Liu, M. (2017). Rigorous numerical modeling of scattering-type scanning near-field optical microscopy and spectroscopy. Applied Physics Letters111(22).

Enhanced UV-C Detection of Perovskite Photodetector Arrays via Inorganic CsPbBr3 Quantum Dot Down-Conversion Layer.

Zou, T., Liu, X., Qiu, R., Wang, Y., Huang, S., Liu, C., ... & Zhou, H. (2019). Enhanced UV‐C detection of perovskite photodetector arrays via inorganic CsPbBr3 quantum dot down‐conversion layer. Advanced Optical Materials7(11), 1801812.

On-demand Semiconductor Source of Entangled Photons Which Simultaneously Has High Fidelity, Efficiency, and Indistinguishability.

Wang, H., Hu, H., Chung, T. H., Qin, J., Yang, X., Li, J. P., ... & Pan, J. W. (2019). On-demand semiconductor source of entangled photons which simultaneously has high fidelity, efficiency, and indistinguishability. Physical review letters122(11), 113602.

Plasmonic-based gas sensing with graphene nanoribbons.

Khaliji, K., Biswas, S. R., Hu, H., Yang, X., Dai, Q., Oh, S. H., ... & Low, T. (2019). Plasmonic-based gas sensing with graphene nanoribbons. arXiv preprint arXiv:1910.01231.

Nanoscale vacuum channel transistor with in-plane collection structure.

Xu, J., Hu, H., Yang, W., Li, C., Shi, Y., Shi, Y., ... & Zhang, X. (2019). Nanoscale vacuum channel transistor with in-plane collection structure. Nanotechnology31(6), 065202.

Anomalous contrast in broadband THz near-field imaging of gold microstructures.

Pizzuto, A., Chen, X., Hu, H., Dai, Q., Liu, M., & Mittleman, D. M. (2021). Anomalous contrast in broadband THz near-field imaging of gold microstructures. Optics Express29(10), 15190-15198.

Doping-driven topological polaritons in graphene/α-MoO3 heterostructures.

Hu, H., Chen, N., Teng, H., Yu, R., Qu, Y., Sun, J., ... & Dai, Q. (2022). Doping-driven topological polaritons in graphene/α-MoO3 heterostructures. Nature Nanotechnology17(9), 940-946.

Plasmonic Cu Nanoparticles for the Low-temperature Photo-driven Water-gas Shift Reaction Angewandte Chemie - International Edition

Zhao, J., Bai, Y., Li, Z., Liu, J., Wang, W., Wang, P., ... & Zhang, T. (2023). Plasmonic Cu nanoparticles for the low‐temperature photo‐driven water‐gas shift reaction. Angewandte Chemie International Edition62(13), e202219299.

Introduction to nanoscale quantum technologies

Dai, Q., Lu, C. Y., & Sun, Z. (2023). Introduction to nanoscale quantum technologies. Nanoscale15(26), 10858-10859.

Celebrating the 20th anniversary of the National Center for Nanoscience and Technology

Liu, X., Dai, Q., Wei, Z., Chen, C., & Zhao, Y. (2024). Celebrating the 20th anniversary of the National Center for Nanoscience and Technology, China (NCNST). Nanoscale16(6), 2691-2694.