光学 精密工程, 2020, 28 (12): 2629, 网络出版: 2021-01-19   

飞秒激光双光子聚合方法加工图案化微透镜及其成像测试

P attern ed m icrolen s p rocessed u sing tw o -photon polym erization of fem tosecond laser and its im agin g test
作者单位
1 安徽大学电气工程与自动化学院, 安徽合肥 230601
2 安徽大学电子信息工程学院, 安徽合肥 230601
3 信息材料与智能感知安徽省实验室, 安徽合肥 230601
4 中国科学技术大学精密机械与精密仪器系, 安徽合肥 230022
引用该论文

苏亚辉, 秦天天, 许兵, 吴东. 飞秒激光双光子聚合方法加工图案化微透镜及其成像测试[J]. 光学 精密工程, 2020, 28(12): 2629.

SU Ya-hui, QIN Tian-tian, XU Bing, WU Dong. P attern ed m icrolen s p rocessed u sing tw o -photon polym erization of fem tosecond laser and its im agin g test[J]. Optics and Precision Engineering, 2020, 28(12): 2629.

参考文献

[1] LIN K B, SHEN T W, SU Y H. Emergent upcon. version sustainable micro-optical trapping device[J]. Particle & Particle;Particle Systems Charac. terization, 2019, 36(7): 1900077.

[2] ZHANG T Y, LI P, YU H B, et al.. Fabrication of flexible microlens arrays for parallel super-resolution imaging[J]. Applied Surface Science, 2020, 504: 144375.

[3] 张一, 余卿, 张昆, 等.基于数字微镜器件的并行彩色共聚焦测量系统[J].光学精密工程, 2020, 28(4): 859-866. ZHANG Y, YU Q, ZHANG K, et al.. Parallel col. or confocal measurement system based on digital mi. cromirror device[J]. Optics and Precision Engineer. ing, 2020, 28(4): 859-866.(in Chinese)

[4] YANG B, ZHOU J Y, CHEN Q M, et al.. Fabrica. tion of hexagonal compound eye microlens array us. ing DMD-based lithography with dose modulation.[J]. Optics Express, 2018, 26(22): 28927.

[5] ZHAO W X, WANG Q H, WANG A H, et al.. Autostereoscopic display based on two-layer lenticu. lar lenses[J]. Optics Letters, 2010, 35(24): 4127-4129.

[6] SCHONBRUN E, STEINVURZEL P E, CRO. ZIER K B. A microfluidic fluorescence measurement system using an astigmatic diffractive microlens array[J]. Optics Express, 2011, 19(2): 1385-1394.

[7] HU JY, LIN C P, HUANG S Y, et al.. Semi-el. lipsoid microlens simulation and fabrication for en. hancing optical fiber coupling efficiency[J]. Sens. Act. A Phys., 2008, 147(1): 93-98.

[8] XU J J, YAOW G, TIAN ZN, et al.. High curva. ture concave-convex microlens[J]. IEEE Photonics Technology Letters, 2015, 27(23): 2465-2468.

[9] CADARSO V J, PERERA-Nú.EZ J, JACOT DESCOMBES L, et al.. Microlenses with defined contour shapes[J]. Optics Express, 2011, 19(19): 18665-18670.

[10] 胡绪瑞, 陈达, 王刚.等.利用双光子聚合在非透明基底上制备微结构[J].宁波大学学报: 理工版, 2019, 32(5): 85-90. HU X R, CHEN D, WANG G, et al.. Fabrica. tion of microstructures on non-transparent sub. strates by two-photon polymerization[J]. Journal of Ningbo University: Nature Science & Engineer. ing Edition, 2019, 32(5): 85-90.(in Chinese)

[11] 潘传鹏, 周明, 刘立鹏, 等.双光子微加工技术与应用研究[J].纳米技术与精密工程, 2004, 2(4): 278-283. PAN CH P, ZHOU M, LIU L P, et al.. Research on two-photon microfabrication technology and its application[J]. Nanotechnology and Precision En. gineering, 2004, 2(4): 278-283.(in Chinese)

[12] WU D, WU S Z, NIU L G, et al.. High numeri. cal aperture microlens arrays of close packing[J]. Applied Physics Letters, 2010, 97(3): 031109.

[13] WU D, CHEN Q D, NIU L G, et al.. 100% fill-factor Aspheric Microlens Arrays(AMLA) with sub-20-nm precision[J]. IEEE Photonics Technology Letters, 2009, 21(20): 1535-1537.

[14] WU D, NIU LG, CHEN Q D, et al.. High effi. ciency multilevel phase-type fractal zone plates[J]. Optics Letters, 2008, 33(24): 2913-2915.

[15] 杨亮.基于空间光调制器的飞秒激光并行加工技术的研究[D].合肥: 中国科学技术大学, 2015. YANG L. Research on Parallel Femtosecond La. ser Processing Technologies with Spatial Light Modulator[D]. Hefei: University of Science and Technology of China, 2015.(in Chinese)

[16] 苏亚辉, 汪金礼, 杨亮, 等.飞秒激光全息并行加工中的多焦点均一性[J].光学精密工程, 2013, 21 (8): 1936-1941. SU Y H, WANG J L, YANG L, et al.. Multifocal uniformity in femtosecond laser holographic parallel processing[J]. Optics and Precision Engineering, 2013, 21(8): 1936-1941.(in Chinese)

[17] ZHANG Z Y, ZHANG C C, HU Y L, et al.. Highly uniform parallel microfabrication using a large numerical aperture system[J]. Applied Phys. ics Letters, 2016, 109(2): 021109.

[18] 袁宏伟, 饶生龙, 吴东, 等.基于飞秒激光的可运动微结构加工与旋转驱动[J].光学精密工程, 2020, 28(3): 584-590. YUANH W, RAO SH L, WU D, et al.. Moveable microstructure machining and rotating drive based on femtosecond laser[J]. Optics and Precision Engi. neering, 2020, 28(3): 584-590.(in Chinese)

[19] 李金健, 刘一, 曲士良.飞秒激光微纳加工光纤功能器件研究进展[J].激光与光电子学进展, 2020, 57(11): 1-27. LI J J, LIU Y, QU SH L. Research progress on fi. ber functional devices fabricated by femtosecond la. ser micro-nano processing[J]. Laser & Optoelec. tronics Progress, 2020, 57(11): 1-27.(in Chinese)

[20] 史杨, 许兵, 吴东, 等.飞秒激光直写技术制备功能化微流控芯片研究进展[J].中国激光, 2019, 46(10): 9-28. SHI Y, XU B, WU D, et al.. Research progress on the preparation of functional microfluidic chips using femtosecond laser direct writing technology[J]. Chinese Journal of Lasers, 2019, 46(10): 9-28.(in Chinese)

[21] 马卓晨, 张永来, 孙洪波.飞秒激光“双三维”纳米加工制备智能微纳器件[J].科学通报, 2020(8): 1-2. MA ZH CH, ZHANG Y L, SUN H B. Fabrica. tion of intelligent micro-nano devices by femtosec. ond laser "double 3d" nanometer[J]. Science Bulle. tin, 2020(8): 1-2.(in Chinese)

[22] 张佳茹, 管迎春.超快激光制备生物医用材料表面功能微结构的现状及研究进展[J].中国光学, 2019, 12(2): 199-213. ZHANG J R, GUAN Y CH. Current situation and research progress of surface functional microstruc. ture of biomedical materials prepared by ultrafast la. ser: a review[J]. Chinese Journal of Optics, 2019, 12(2): 199-213.(in Chinese)

苏亚辉, 秦天天, 许兵, 吴东. 飞秒激光双光子聚合方法加工图案化微透镜及其成像测试[J]. 光学 精密工程, 2020, 28(12): 2629. SU Ya-hui, QIN Tian-tian, XU Bing, WU Dong. P attern ed m icrolen s p rocessed u sing tw o -photon polym erization of fem tosecond laser and its im agin g test[J]. Optics and Precision Engineering, 2020, 28(12): 2629.

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