中国激光, 2018, 45 (8): 0809001, 网络出版: 2018-08-11  

基于聚合物分散液晶的二维六角晶格变间距光栅的研制 下载: 906次

Development of Two-Dimensional Hexagonal Lattice Variable Line-Space Grating Based on Polymer-Dispersed Liquid Crystal
作者单位
1 上海理工大学光电信息与计算机工程学院, 上海 200093
2 上海理工大学上海市现代光学系统重点实验室, 上海 200093
引用该论文

缪涛, 郑继红, 王康妮, 刘悠嵘, 黄新荣, 朱天赟. 基于聚合物分散液晶的二维六角晶格变间距光栅的研制[J]. 中国激光, 2018, 45(8): 0809001.

Miao Tao, Zheng Jihong, Wang Kangni, Liu Yourong, Huang Xinrong, Zhu Tianyun. Development of Two-Dimensional Hexagonal Lattice Variable Line-Space Grating Based on Polymer-Dispersed Liquid Crystal[J]. Chinese Journal of Lasers, 2018, 45(8): 0809001.

参考文献

[1] Masanovic G Z, Reed G T, Headley W, et al. A high efficiency input/output coupler for small silicon photonic devices[J]. Optics Express, 2005, 13(19): 7374-7379.

    Masanovic G Z, Reed G T, Headley W, et al. A high efficiency input/output coupler for small silicon photonic devices[J]. Optics Express, 2005, 13(19): 7374-7379.

    Masanovic G Z, Reed G T, Headley W, et al. A high efficiency input/output coupler for small silicon photonic devices[J]. Optics Express, 2005, 13(19): 7374-7379.

[2] Alferness R C, Joyner C H, Divino M D, et al. Narrowband grating resonator filters in InGaAsP/InP waveguides[J]. Applied Physics Letters, 1986, 49(3): 125-127.

    Alferness R C, Joyner C H, Divino M D, et al. Narrowband grating resonator filters in InGaAsP/InP waveguides[J]. Applied Physics Letters, 1986, 49(3): 125-127.

    Alferness R C, Joyner C H, Divino M D, et al. Narrowband grating resonator filters in InGaAsP/InP waveguides[J]. Applied Physics Letters, 1986, 49(3): 125-127.

[3] Baba T, Hamasaki M, Watanabe N, et al. A novel short-cavity laser with deep-grating distributed Bragg reflectors[J]. Japanese Journal of Applied Physics, 1996, 35: 1390-1394.

    Baba T, Hamasaki M, Watanabe N, et al. A novel short-cavity laser with deep-grating distributed Bragg reflectors[J]. Japanese Journal of Applied Physics, 1996, 35: 1390-1394.

    Baba T, Hamasaki M, Watanabe N, et al. A novel short-cavity laser with deep-grating distributed Bragg reflectors[J]. Japanese Journal of Applied Physics, 1996, 35: 1390-1394.

[4] Hall J T. Focal properties of a plane grating in a convergent beam[J]. Applied Optics, 1966, 5(6): 1051-1055.

    Hall J T. Focal properties of a plane grating in a convergent beam[J]. Applied Optics, 1966, 5(6): 1051-1055.

    Hall J T. Focal properties of a plane grating in a convergent beam[J]. Applied Optics, 1966, 5(6): 1051-1055.

[5] 时轮, 郝德阜. 变栅距衍射光栅的原理及应用[J]. 光学精密工程, 2001, 9(3): 284-287.

    时轮, 郝德阜. 变栅距衍射光栅的原理及应用[J]. 光学精密工程, 2001, 9(3): 284-287.

    时轮, 郝德阜. 变栅距衍射光栅的原理及应用[J]. 光学精密工程, 2001, 9(3): 284-287.

    Shi L, Hao D F. Theory and applications of varied line-space gratings[J]. Optics and Precision Engineering, 2001, 9(3): 284-287.

    Shi L, Hao D F. Theory and applications of varied line-space gratings[J]. Optics and Precision Engineering, 2001, 9(3): 284-287.

    Shi L, Hao D F. Theory and applications of varied line-space gratings[J]. Optics and Precision Engineering, 2001, 9(3): 284-287.

[6] 陈建文, 傅淑芬, 张大可, 等. 制作变间距光栅的新方法[J]. 中国激光, 1986, 13(5): 291-294.

    陈建文, 傅淑芬, 张大可, 等. 制作变间距光栅的新方法[J]. 中国激光, 1986, 13(5): 291-294.

    陈建文, 傅淑芬, 张大可, 等. 制作变间距光栅的新方法[J]. 中国激光, 1986, 13(5): 291-294.

    Chen J W, Fu S F, Zhang D K, et al. Producing grating with variable spacing[J]. Chinese Journal of Lasers, 1986, 13(5): 291-294.

    Chen J W, Fu S F, Zhang D K, et al. Producing grating with variable spacing[J]. Chinese Journal of Lasers, 1986, 13(5): 291-294.

    Chen J W, Fu S F, Zhang D K, et al. Producing grating with variable spacing[J]. Chinese Journal of Lasers, 1986, 13(5): 291-294.

[7] Wilbur J L, Jackman R J, Whitesides G M, et al. Elastomeric optics[J]. Chemistry of Materials, 1996, 8(7): 1380-1385.

    Wilbur J L, Jackman R J, Whitesides G M, et al. Elastomeric optics[J]. Chemistry of Materials, 1996, 8(7): 1380-1385.

    Wilbur J L, Jackman R J, Whitesides G M, et al. Elastomeric optics[J]. Chemistry of Materials, 1996, 8(7): 1380-1385.

[8] Liu K, Xu H N, Hu H F, et al. One-step fabrication of graded rainbow-colored holographic photopolymer reflection gratings[J]. Advanced Materials, 2012, 24(12): 1604-1609.

    Liu K, Xu H N, Hu H F, et al. One-step fabrication of graded rainbow-colored holographic photopolymer reflection gratings[J]. Advanced Materials, 2012, 24(12): 1604-1609.

    Liu K, Xu H N, Hu H F, et al. One-step fabrication of graded rainbow-colored holographic photopolymer reflection gratings[J]. Advanced Materials, 2012, 24(12): 1604-1609.

[9] Kim H, Jung H, Lee D H, et al. Period-chirped gratings fabricated by laser interference lithography with a concave Lloyd's mirror[J]. Applied Optics, 2016, 55(2): 354-359.

    Kim H, Jung H, Lee D H, et al. Period-chirped gratings fabricated by laser interference lithography with a concave Lloyd's mirror[J]. Applied Optics, 2016, 55(2): 354-359.

    Kim H, Jung H, Lee D H, et al. Period-chirped gratings fabricated by laser interference lithography with a concave Lloyd's mirror[J]. Applied Optics, 2016, 55(2): 354-359.

[10] Bunning T J, Natarajan L V, Tondiglia V P, et al. Holographic polymer-dispersed liquid crystals (H-PDLCs)[J]. Annual Review Materials, 2000, 30(1): 83-115.

    Bunning T J, Natarajan L V, Tondiglia V P, et al. Holographic polymer-dispersed liquid crystals (H-PDLCs)[J]. Annual Review Materials, 2000, 30(1): 83-115.

    Bunning T J, Natarajan L V, Tondiglia V P, et al. Holographic polymer-dispersed liquid crystals (H-PDLCs)[J]. Annual Review Materials, 2000, 30(1): 83-115.

[11] Liu YJ, Sun X W. Holographic polymer-dispersed liquid crystals: materials, formation, applications[J/OL]. Advances inOptoElectronics( 2009-04-27). https://doi.org/10.1155/2008/684349.

    Liu YJ, Sun X W. Holographic polymer-dispersed liquid crystals: materials, formation, applications[J/OL]. Advances inOptoElectronics( 2009-04-27). https://doi.org/10.1155/2008/684349.

    Liu YJ, Sun X W. Holographic polymer-dispersed liquid crystals: materials, formation, applications[J/OL]. Advances inOptoElectronics( 2009-04-27). https://doi.org/10.1155/2008/684349.

[12] Ren H W, Fan Y H, Lin Y H, et al. Tunable-focus microlens arrays using nanosized polymer-dispersed liquid crystal droplets[J]. Optics Communications, 2005, 247(1/2/3): 101-106.

    Ren H W, Fan Y H, Lin Y H, et al. Tunable-focus microlens arrays using nanosized polymer-dispersed liquid crystal droplets[J]. Optics Communications, 2005, 247(1/2/3): 101-106.

    Ren H W, Fan Y H, Lin Y H, et al. Tunable-focus microlens arrays using nanosized polymer-dispersed liquid crystal droplets[J]. Optics Communications, 2005, 247(1/2/3): 101-106.

[13] Liu Y J, Sun X W, Liu J H, et al. A polarization insensitive 2×2 optical switch fabricated by liquid crystal-polymer composite[J]. Applied Physics Letters, 2005, 86(4): 041115.

    Liu Y J, Sun X W, Liu J H, et al. A polarization insensitive 2×2 optical switch fabricated by liquid crystal-polymer composite[J]. Applied Physics Letters, 2005, 86(4): 041115.

    Liu Y J, Sun X W, Liu J H, et al. A polarization insensitive 2×2 optical switch fabricated by liquid crystal-polymer composite[J]. Applied Physics Letters, 2005, 86(4): 041115.

[14] Jeong E H, Kim B K. Holographic polymer dispersed liquid crystals using vinyltrimethoxysilane[J]. Optics Communications, 2009, 282(8): 1541-1545.

    Jeong E H, Kim B K. Holographic polymer dispersed liquid crystals using vinyltrimethoxysilane[J]. Optics Communications, 2009, 282(8): 1541-1545.

    Jeong E H, Kim B K. Holographic polymer dispersed liquid crystals using vinyltrimethoxysilane[J]. Optics Communications, 2009, 282(8): 1541-1545.

[15] Wu S T. Fuh A Y G. Color dispersion in two-dimensional phase array based on polymer-dispersed liquid crystal film[J]. Optics Communications, 2008, 281(6): 1732-1738.

    Wu S T. Fuh A Y G. Color dispersion in two-dimensional phase array based on polymer-dispersed liquid crystal film[J]. Optics Communications, 2008, 281(6): 1732-1738.

    Wu S T. Fuh A Y G. Color dispersion in two-dimensional phase array based on polymer-dispersed liquid crystal film[J]. Optics Communications, 2008, 281(6): 1732-1738.

[16] 高辉, 郑继红, 王康妮, 等. 三色激发聚合物分散液晶体光栅的制备及应用[J]. 中国激光, 2016, 43(3): 0306002.

    高辉, 郑继红, 王康妮, 等. 三色激发聚合物分散液晶体光栅的制备及应用[J]. 中国激光, 2016, 43(3): 0306002.

    高辉, 郑继红, 王康妮, 等. 三色激发聚合物分散液晶体光栅的制备及应用[J]. 中国激光, 2016, 43(3): 0306002.

    Gao H, Zheng J H, Wang K N, et al. Fabrication and application of a tri-color excited holographic polymer dispersed liquid crystal volume gratings[J]. Chinese Journal of Lasers, 2016, 43(3): 0306002.

    Gao H, Zheng J H, Wang K N, et al. Fabrication and application of a tri-color excited holographic polymer dispersed liquid crystal volume gratings[J]. Chinese Journal of Lasers, 2016, 43(3): 0306002.

    Gao H, Zheng J H, Wang K N, et al. Fabrication and application of a tri-color excited holographic polymer dispersed liquid crystal volume gratings[J]. Chinese Journal of Lasers, 2016, 43(3): 0306002.

[17] Zhang M H, Zheng J H, Gui K, et al. Electro-optical characteristics of holographic polymer dispersed liquid crystal gratings doped with nanosilver[J]. Applied Optics, 2013, 52(31): 7411-7418.

    Zhang M H, Zheng J H, Gui K, et al. Electro-optical characteristics of holographic polymer dispersed liquid crystal gratings doped with nanosilver[J]. Applied Optics, 2013, 52(31): 7411-7418.

    Zhang M H, Zheng J H, Gui K, et al. Electro-optical characteristics of holographic polymer dispersed liquid crystal gratings doped with nanosilver[J]. Applied Optics, 2013, 52(31): 7411-7418.

[18] 王康妮, 郑继红, 桂坤, 等. 纳米银掺杂的液晶/聚合物全息光栅中的表面等离子体共振[J]. 激光与光电子学进展, 2014, 51(2): 021603.

    王康妮, 郑继红, 桂坤, 等. 纳米银掺杂的液晶/聚合物全息光栅中的表面等离子体共振[J]. 激光与光电子学进展, 2014, 51(2): 021603.

    王康妮, 郑继红, 桂坤, 等. 纳米银掺杂的液晶/聚合物全息光栅中的表面等离子体共振[J]. 激光与光电子学进展, 2014, 51(2): 021603.

    Wang K N, Zheng J H, Gui K, et al. Surface plasmon resonance of holographic polymer dispersed liquid crystal grating doped with nano-Ag[J]. Laser & Optoelectronics Progress, 2014, 51(2): 021603.

    Wang K N, Zheng J H, Gui K, et al. Surface plasmon resonance of holographic polymer dispersed liquid crystal grating doped with nano-Ag[J]. Laser & Optoelectronics Progress, 2014, 51(2): 021603.

    Wang K N, Zheng J H, Gui K, et al. Surface plasmon resonance of holographic polymer dispersed liquid crystal grating doped with nano-Ag[J]. Laser & Optoelectronics Progress, 2014, 51(2): 021603.

[19] 朱化凤, 陈建文, 高鸿奕, 等. 高频可变间距全息光栅的制作方法的计算机模拟研究[J]. 物理学报, 2005, 54(2): 682-686.

    朱化凤, 陈建文, 高鸿奕, 等. 高频可变间距全息光栅的制作方法的计算机模拟研究[J]. 物理学报, 2005, 54(2): 682-686.

    朱化凤, 陈建文, 高鸿奕, 等. 高频可变间距全息光栅的制作方法的计算机模拟研究[J]. 物理学报, 2005, 54(2): 682-686.

    Zhu H F, Chen J W, Gao H Y, et al. A new method to produce high spatial frequency grating with variable spacing[J]. Acta Physica Sinica, 2005, 54(2): 682-686.

    Zhu H F, Chen J W, Gao H Y, et al. A new method to produce high spatial frequency grating with variable spacing[J]. Acta Physica Sinica, 2005, 54(2): 682-686.

    Zhu H F, Chen J W, Gao H Y, et al. A new method to produce high spatial frequency grating with variable spacing[J]. Acta Physica Sinica, 2005, 54(2): 682-686.

[20] Qi J. DeSarkar M, Warren G T, et al. In situ shrinkage measurement of holographic polymer dispersed liquid crystals[J]. Journal of Applied Physics, 2002, 91(8): 4795-4800.

    Qi J. DeSarkar M, Warren G T, et al. In situ shrinkage measurement of holographic polymer dispersed liquid crystals[J]. Journal of Applied Physics, 2002, 91(8): 4795-4800.

    Qi J. DeSarkar M, Warren G T, et al. In situ shrinkage measurement of holographic polymer dispersed liquid crystals[J]. Journal of Applied Physics, 2002, 91(8): 4795-4800.

[21] Naydenova I, Jallapuram R, Toal V. et al. Characterisation of the humidity and temperature responses of a reflection hologram recorded in acrylamide-based photopolymer[J]. Sensors and Actuators B, 2009, 139(1): 35-38.

    Naydenova I, Jallapuram R, Toal V. et al. Characterisation of the humidity and temperature responses of a reflection hologram recorded in acrylamide-based photopolymer[J]. Sensors and Actuators B, 2009, 139(1): 35-38.

    Naydenova I, Jallapuram R, Toal V. et al. Characterisation of the humidity and temperature responses of a reflection hologram recorded in acrylamide-based photopolymer[J]. Sensors and Actuators B, 2009, 139(1): 35-38.

[22] Zheng Z G, Song J, Liu Y G, et al. Single-step exposure for two-dimensional electrically-tunable diffraction grating based on polymer dispersed liquid crystal[J]. Liquid Crystals, 2008, 35(4): 489-499.

    Zheng Z G, Song J, Liu Y G, et al. Single-step exposure for two-dimensional electrically-tunable diffraction grating based on polymer dispersed liquid crystal[J]. Liquid Crystals, 2008, 35(4): 489-499.

    Zheng Z G, Song J, Liu Y G, et al. Single-step exposure for two-dimensional electrically-tunable diffraction grating based on polymer dispersed liquid crystal[J]. Liquid Crystals, 2008, 35(4): 489-499.

[23] Liu Y J, Sun X W. Electrically tunable two-dimensional holographic photonic crystal fabricated by a single diffractive element[J]. Applied Physics Letters, 2006, 89(17): 171101.

    Liu Y J, Sun X W. Electrically tunable two-dimensional holographic photonic crystal fabricated by a single diffractive element[J]. Applied Physics Letters, 2006, 89(17): 171101.

    Liu Y J, Sun X W. Electrically tunable two-dimensional holographic photonic crystal fabricated by a single diffractive element[J]. Applied Physics Letters, 2006, 89(17): 171101.

缪涛, 郑继红, 王康妮, 刘悠嵘, 黄新荣, 朱天赟. 基于聚合物分散液晶的二维六角晶格变间距光栅的研制[J]. 中国激光, 2018, 45(8): 0809001. Miao Tao, Zheng Jihong, Wang Kangni, Liu Yourong, Huang Xinrong, Zhu Tianyun. Development of Two-Dimensional Hexagonal Lattice Variable Line-Space Grating Based on Polymer-Dispersed Liquid Crystal[J]. Chinese Journal of Lasers, 2018, 45(8): 0809001.

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