2021年
[1] Yang, H.; Chen, Y.; Liu, M.; Xiao, G.; Luo, Y.; Liu, H.*; Li, J.; Yuan, L. High Q-Factor Hybrid Metamaterial Waveguide Multi-Fano Resonance Sensor in the Visible Wavelength Range. Nanomaterials 2021, 11, 1583. https://doi.org/10.3390/nano11061583 (SCI, IF:5.07,中科院二区)
[2] W. Yang, H. Yang*, S. Xue, L. Guo, L. Zeng and G. Xiao, "Observation of Double Fano Interference in Metal-Insulator Block Arrays," in IEEE Photonics Journal, vol. 13, no. 1, pp. 1-9, Feb. 2021, Art no. 6500109, doi: 10.1109/JPHOT.2020.3036601. (SCI, IF:2.833,中科院三区)
[3] Xiao, G., Xu, Y., Yang, H*., Ou, Z., Chen, J., Li, H., ... & Li, J. (2021). High Sensitivity Plasmonic Sensor Based on Fano Resonance with Inverted U-Shaped Resonator. Sensors, 21(4), 1164. (SCI, IF:3.275,中科院三区)
[4] Yang, H., Liu, M., Chen, Y., Guo, L., Xiao, G.*, Liu, H., ... & Yuan, L. (2021). Highly Sensitive Graphene-Au Coated Plasmon Resonance PCF Sensor. Sensors, 21(3), 818. (SCI, IF:3.275,中科院三区)
[5] Xiao, G., Ou, Z., Yang, H.*, Xu, Y., Chen, J., Li, H., ... & Li, J. (2021). An Integrated Detection Based on a Multi-Parameter Plasmonic Optical Fiber Sensor. Sensors, 21(3), 803. (SCI, IF:3.275,中科院三区)
[6] Yang, H., Wang, Y., Tiu, Z. C., Yuan, L., & Zhang, H. (2021). Chapter 3 - Black phosphorus: deviceand application. In Y. M. Jhon & J. H. Lee (Eds.), 2D Materials for Nanophotonics (pp. 139-163): Elsevier. (ebook-ISBN978-0-12-818658-9) (Elsevier出版社,英文书籍的第三章)
2020年
[1] Guo, L., Guo, M., Yang, H*., Ma, J., & Chen, S*. (2020). Ultra-Narrow-Band Filter Based on High Q Factor in Metallic Nanoslit Arrays. Sensors, 20(18), 5205. . (SCI收录,IF:3.72, 三区)
[2] Xiao,G.; Zhang, K.; Yang, Y.; Yang, H*.; Guo, L.; Li, J.; Yuan, L. Graphene Oxide Sensitized No-Core Fiber Step-Index Distribution Sucrose Sensor. Photonics 2020, 7, 101. (SCI, IF:2.140,中科院三区)
[3]肖功利,张开富,杨宏艳*,杨寓婷,杨秀华,窦婉滢,曾丽珍.D型对称双芯光子晶体光纤双谐振峰的折射率传感器[J/OL].光学学报:1-14[2020-06-30].(Ei收录)
[4]杨宏艳, 陈昱澎, 肖功利*, 刘孟银, 刘厚权, 滕传新, 邓洪昌, 陈明, 徐荣辉, 邓仕杰, 苑立波. 内嵌对称扇形金属谐振腔的MIM可调谐等离子体滤波器. 光学学报, 2020, 40(11): 1124001.(Ei收录)
[5]杨宏艳,韦柳夏,黄文海,刘厚权,滕传新,陈明,邓洪昌,徐荣辉,邓仕杰,苑立波.纳米金属复合孔阵列强透射折射率传感器研究[J].深圳大学学报(理工版),2019,36(04):405-410.
[4]Yang, Hongyan & Li, Zhenkai & Li, Fang & Liu, Houquan & Teng, Chuanxin & Deng, Hongchang & Xu, Ronghui & Deng, Shijie & Yuan, Libo. (2019). High-Sensitivity Plasmonics Biosensor Based on Graphene Ribbon Arrays. 105-108. 10.1109/ICICN.2019.8834950. 3
[5] Yang H, Li J, Xiao G. Decay and propagation properties of symmetric surface plasmon polariton mode in metal–insulator–metal waveguide[J]. Optics Communications 395 (2017) 159–162. (SCI收录)
[6] Yang H, Li J, Xiao G. Significantly increased surface plasmon polariton mode excitation using a multilayer insulation structure in a metal–insulator–metal plasmonic waveguide[J]. Applied optics, 2014, 53(17): 3642-3646.(SCI收录)
[7] Yang H, Li J, Xiao G. A highly efficient surface plasmon polaritons excitation achieved with a metal-coupled metal-insulator-metal waveguide [J]. AIP Advances, 2014, 4(12): 127114. (SCI收录)
[8] Hong-Yan Y, Yan-Ru Z, Gong-Li X, et al. Enhanced Light Narrow Transmission through Cascaded Metallic Structure with Periodic Aperture Arrays [J]. Chinese Physics Letters, 2012, 29(10): 107303.(SCI收录)
[9] 杨宏艳,肖功利*. 折射率对金属-电介质-金属光子晶体强透射特性的影响[J]. 光学学报. 2012, 32,7: 0716002. (EI收录) [6] 杨宏艳, 肖功利. 金孔阵列-电介质与金-电介质孔阵列的强透射特性[J]. 光学学报, 2012, 32(11): 312-316. (EI收录)
[10] 杨宏艳, 夏雪, 覃裕初,等. 基于新一代 GPS 的垂直度误差评定方法的研究[J]. 传感器与微系统, 2012, 31(5): 44-47.
[11] Gongli X, Hongyan Y. Significantly enhanced transmission achieved with double-layered metallic aperture arrays with sub-skin-depth Ag film [J]. Journal of Semiconductors, 2012, 33(12): 122001. (EI收录)
[12]Gongli X, Hongyan Y. The effect of array periodicity on the filtering characteristics of metal/dielectric photonic crystals [J]. Journal of Semiconductors, 2011, 32(4): 044004. (EI收录)
[13] Yang H, Zhong Y. Extracting Algorithm of Characteristics Data Based STEP in Rapid Prototyping Technology[C]//Genetic and Evolutionary Computing, 2009. WGEC'09. 3rd International Conference on. IEEE, 2009: 374-377.(EI收录)
[14] Xiao G, Li J, Yang H. Enhanced Light Emission of Er (Yb/Y) Silicates at the Wavelength of 1.53μm With Au Plasmonic Arrays[J]. IEEE Photonics Journal, 2017, 9(1):pp.1-9. (SCI收录)
[15]肖功利, 刘小刚, 杨宏艳, 等. 基于金属圆弧孔阵列强透射的折射率传感特性[J]. 光学学报, 2018, 38(2): 0224001.(EI收录)
[16] 肖功利, 刘利, 杨宏艳, 等. 基于微腔耦合结构金属弯曲波导的光透射特性[J]. 光学学报, 2017, 37(12): 1213001.(EI收录)
[17] 肖功利, 郑龙, 王宏庆, 杨宏艳,等. 内嵌镜像对称矩形腔楔形金属狭缝阵列的宽带增强透射[J]. 半导体光电, 2016 37(4):pp.505-509.
[18] 肖功利,郑龙,王宏庆,杨宏艳,韦力丹等. 内置金属/电介质同心圆柱的金属孔阵列结构强透射特性[J].半导体光电, 2016, 37(6):pp.779-795.
[19] 韦力丹, 王宏庆, 杨宏艳, 肖功利*等. 内嵌金属块的金属-绝缘体-金属波导光透射特性[J]. 激光与光电子学进展, 2016, 53(9):pp. 217-223.
[20] 岳宏卫, 邓进丽, 朱智勇, 杨宏艳, 肖功利*等. 纳米狭缝耦合金属圆-矩形复合孔阵列结构增强光透射[J]. 光电工程, 2016, 43(8):pp.7-12.
[21] 肖功利, 杨宏艳. 几何横向比例对金属孔阵列强透射特性的影响[J].半导体光电, 2011, 32(2):pp.220-223.
[22] 肖功利, 杨宏艳. 掺锑二氧化锡薄膜的喷雾热解法制备与热处理[J]. 半导体光电, 2008, 29(3): 357-360. (EI收录)