飞秒激光微纳加工综合系统-Laser Nanofactory

飞秒激光微纳加工综合系统-Laser Nanofactory

参考价:面议
型号: Laser Nanofactory
产地: 其他国家
品牌: femtika
评分:
核心参数
创新点
超分辨单分子动力分析仪C-Trap是通过高度聚焦激光束产生的力来操作纳米/微米颗粒,实现了对生物分子的单分子操纵,并且它结合了力学检测系统和共聚焦或 STED 超分辨显微镜,同时从力学和光学角度,高精度定位反应的结合位点,实时监测生物分子的单分子动力学特性实时监测生物分子的单分子动力学特性,是世界上首款将光镊、共聚焦或STED 超分辨显微镜和微流控系统结合的单分子操控仪器。C-Trap在揭示大量分子相互作用的机制方面弥补了功能缺陷,增加荧光维度去观测,包括:DNA的修复、DNA的复制和转录、核糖体的翻译、生物分子马达和酶、细胞膜的相互作用、DNA-DNA的相互作用等等
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‍‍‍‍‍‍‍‍‍飞秒激光微纳加工综合系统-Laser Nanofactory


Femtika公司设计并生产的飞秒激光微纳加工综合系统-Laser Nanofactory是一款集增材与减材制造于一体的综合微纳加工系统。与传统的微纳3D打印设备相比,Laser Nanofactory不仅可用于光子学聚合物微纳结构的加工,还可以用于石英,陶瓷,玻璃和金属等材料从毫米到微米尺度的精确加工。设备加工速度可高达50mm/s,加工精度优于100nm,还可实现不同加工工艺间的无缝切换。得益于Femtika先进的飞秒激光技术,Laser Nanofactory在进行微纳加工时所产生的热效应小,加工出的结构边缘锐利,因此特别适合微纳结构的加工。

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应用领域



微纳光学、微流控、微纳机电器件(M/NEMS)、纳米技术、 生物医药、通讯技术、传感器件、材料表面改性......


飞秒激光微纳加工综合系统-Laser Nanofactory技术参数


飞秒激光

波长

1028 nm ± 5 nm和514 nm ± 5 nm

脉冲持续时间

<290 fs -   10 ps

脉冲能量

>65 μJ

最大平均功率

>4 W

重复率

60 - 1000 kHz

冷却方式

气冷

定位平台

XY方向移动范围

160 mm x 160 mm

Z方向移动范围

60mm

XYZ正交性

3 arc sec

分辨率

1 nm (XY), 2   nm (Z)

最高速度

350 mm/s   (YX), 200 mm/s (Z)


飞秒激光微纳加工综合系统-Laser Nanofactory应用实例

多光子聚合物3D结构


选择性刻蚀结果展示


在样品上进行激光烧蚀


对器件中的不同材料采用不同加工技术(无缝切换)


用户单位



发表文章


[1] A. Butkutė, G. Merkininkaitė, T. Jurkšas, J. Stančikas, T. Baravykas, R. Vargalis, T. Tičkūnas, J. Bachmann, S. Šakirzanovas, V. Sirutkaitis, and L. Jonušauskas, “Femtosecond Laser Assisted 3D Etching Using Inorganic-Organic Etchant”, Materials 2022,15, 2817, (2022).

[2] G. Kontenis, D. Gailevičius, N. Jimenez, and K. Staliunas, “Optical Drills by Dynamic High‑Order Bessel Beam Mixing”, Phys. Rev. Applied 17, 034059, (2022).

[3] D. Čereška, A. Žemaitis, G. Kontenis, G. Nemickas, and L. Jonušauskas, “On‑Demand Wettability via Combining fs Laser Surface Structuring and Thermal Post-Treatment”, Materials 2022,15, 2141, (2022).

[4] A. Butkutė, and L. Jonušauskas, “3D Manufacturing of Glass Microstructures Using Femtosecond Laser”,Micromachines 2021,12, 499, (2021).

[5] D. Andrijec, D. Andriukaitis, R. Vargalis, T. Baravykas, T. Drevinskas, O. Kornyšova, A. Butkutė, V. Kaškonienė, M. Stankevičius, H. Gricius, A. Jagelavičius, A. Maruška, and L. Jonušauskas, “Hybrid additive subtractive femtosecond 3D manufacturing of nanofilter based microfluidic separator”, Applied Physics A (2021).

[6] D. Gonzalez-Hernandez, S. Varapnickas, G. Merkininkaitė, A. Čiburys, D. Gailevičius, S. Šakirzanovas, S. Juodkazis, and M. Malinauskas,”Laser 3D Printing of Inorganic Free‑Form Micro-Optics”, Photonics 2021,8, 577, (2021).

[7] D. Andriukaitis, A. Butkutė, T. Baravykas, R. Vargalis, J. Stančikas, T. Tičkūnas, V. Sirutkaitis, and L. Jonušauskas, “Femtosecond Fabrication of 3D Free-Form Functional Glass Microdevices: Burst-Mode Ablation and Selective Etching Solutions”, 2021 Conference on Lasers and Electro-Optics Europe & European Quantum Electronics Conference, (2021).

[8] A. Butkutė, T. Baravykas, J. Stančikas, T. Tičkūnas, R. Vargalis, D. Paipulas, V. Sirutkaitis, and L. Janušauskas, “Optimization of selective laser etching (SLE) for glass micromechanical structure fabrication”, Optical Express 23487, Vol. 29, No. 15, 19.07.2021, (2021).

[9] A. Maruška, T. Drevinskas, M. Stankevičius, K. Bimbiraitė-Survilienė, V. Kaškonienė, L. Jonušauskas, R. Gadonas, S. Nilsson, and O. Kornyšova, “Single-chip based contactless conductivity detection system for multi-channel separations”, Anal. Methods, 2021,13,141–146, (2021).

[10] L. Bakhchova, L. Jonušauskas, D. Andrijec, M. Kurachkina, T. Baravykas, A. Eremin, and U. Steinmann,“Femtosecond Laser-Based Integration of Nano-Membranes into Organ-on-a-Chip Systems”, Materials 2020, 13, 3076 (2020).

[11] T. Tičkūnas, D. Paipulas, and V. Purlys, “Dynamic voxel size tuning for direct laser writing,” Opt. Mater. Express 10, 1432-1439 (2020).

[12] T. Tičkūnas, D. Paipulas, and V. Purlys, “4Pi multiphoton polymerization”, Appl. Phys. Lett. 116, 031101 (2020).

[13] L. Jonušauskas, T. Baravykas, D. Andrijec, T. Gadišauskas, and V. Purlys, “Stitchless support-free 3D printing of free-form micromechanical structures with feature size on-demand”, Sci Rep 9, 17533 (2019).

[14] S. Gawali. D. Gailevičius, G. Garre-Werner, V. Purlys, C. Cojocaru, J. Trull, J. Montiel-Ponsoda, and K. Staliunas, “Photonic crystal spatial filtering in broad aperture diode laser”, Appl. Phys. Lett. 115, 141104 (2019).

[15] L. Jonušauskas, D. Gailevičius, S. Rekštytė, T. Baldacchini, S. Juodkazis, and M. Malinauskas, “Mesoscale laser 3D printing,” Opt. Express 27, 15205-15221 (2019).

[16] L. Jonušauskas, D. Mackevičiūtė, G. Kontenis and V. Purlys, “Femtosecond lasers: the ultimate tool for high precision 3D manufacturing”, Adv. Opt. Technol., 20190012, ISSN (Online) 2192-8584, (2019).

[17] L. Grineviciute, C. Babayigit, D. Gailevicius, E. Bor, M. Turduev, V. Purlys, T. Tolenis, H. Kurt, and K. Staliunas,“Angular filtering by Bragg photonic microstructures fabricated by physical vapour deposition”, Appl. Surf. Sci., 481, 353-359 (2019).

[18] D. Gailevičius, V. Padolskytė, L. Mikoliūnaitė, S. Šakirzanovas, S. Juodkazis, and M. Malinauskas, “Additive manufacturing of 3D glass-ceramics down to nanoscale resolution”, Nanoscale Horiz., 4, 647-651 (2019).

[19] E. Yulanto, S. Chatterjee, V. Purlys, and V. Mizeikis, “Imaging of latent three-dimensional exposure patterns created by direct laser writing in photoresists”, Appl. Surf. Sci., 479, 822-827 (2019).

[20] L. Jonušauskas, S. Juodkazis, and M. Malinauskas, “Optical 3D printing: bridging the gaps in the mesoscale”, J. Opt., 20(05301) (2018).

[21] E. Skliutas, S. Kasetaite, L. Jonušauskas, J. Ostrauskaite, and M. Malinauskas “Photosensitive naturally derived resins toward optical 3-D printing,” Opt. Eng. 57(4), 041412 (2018).

[22] L. Jonušauskas, S. Rekštyte, R. Buividas, S. Butkus, R. Gadonas, S. Juodkazis, and M. Malinauskas,“Hybrid subtractive-additive-welding microfabrication for lab-on-chip applications via single amplified femtosecond laser source,” Opt. Eng. 56(9), 094108 (2017).

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QUANTUM量子科学仪器贸易(北京)有限公司为您提供femtika飞秒激光微纳加工综合系统-Laser Nanofactory,femtikaLaser Nanofactory产地为其他国家,属于进口其它3D打印机,除了飞秒激光微纳加工综合系统-Laser Nanofactory的参数、价格、型号、原理等信息外,还可为您提供超高分辨活细胞荧光红外显微成像系统、多功能单细胞显微操作系统- FluidFM OMNIUM,QUANTUM量子科学客服电话400-860-5168转0980,售前、售后均可联系。

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QUANTUM量子科学仪器贸易(北京)有限公司为您提供femtika飞秒激光微纳加工综合系统-Laser Nanofactory,femtikaLaser Nanofactory产地为其他国家,属于进口其它3D打印机,除了飞秒激光微纳加工综合系统-Laser Nanofactory的参数、价格、型号、原理等信息外,还可为您提供超高分辨活细胞荧光红外显微成像系统、多功能单细胞显微操作系统- FluidFM OMNIUM,QUANTUM量子科学客服电话400-860-5168转0980,售前、售后均可联系。
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