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01

Motion-copying method with symbol sequence-based phase switch control for intelligent optical manufacturing

Öйú¿ÆÑ§Ôº³¤´º¹âѧϸÃÜ»úеÓëÎïÀíÑо¿Ëù¡¢¶¯Ì¬¹âѧ³ÉÏñÓëÕÉÁ¿ÌìÏÂÖØµãʵÑéÊÒÌï´óÅôÑо¿Ô±ÍŶÓ

 

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?https://doi.org/10.37188/lam.2024.012?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Yutang Wang, Dapeng Tian, Haixiang Hu, Yan Li, Shiquan Ni. Motion-copying method with symbol sequence-based phase switch control for intelligent optical manufacturing[J]. Light: Advanced Manufacturing 5, 12(2024). doi: 10.37188/lam.2024.012 

02

All-silicon low-loss THz temporal differentiator based on microring waveguide resonator platform£¨Ì«ºÕ×È΢·ÖÆ÷£ºÒ»ÖÖµÍÏûºÄµÄƬÉÏÌ«ºÕ×ÈÐźŴ¦Öóͷ£Ä£¿£¿£¿£¿£¿£¿£¿£¿é£©

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?https://doi.org/10.37188/lam.2024.017

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Yunjie Rui, Shuyu Zhou, Xuecou Tu, Xu Yan, Bingnan Yan, Chen Zhang, Ziyao Ye, Huilin Zhang, Jingya Xie, Qing-Yuan Zhao, La-Bao Zhang, Xiao-Qing Jia, Huabing Wang, Lin Kang, Jian Chen, Peiheng Wu. All-silicon low-loss THz temporal differentiator based on microring waveguide resonator platform[J]. Light: Advanced Manufacturing 5, 17(2024). doi: 10.37188/lam.2024.017

03

Differential mode-gain equalization via femtosecond laser micromachining-induced refractive index tailoring

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?https://doi.org/10.37188/lam.2024.014?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Cong Zhang, Senyu Zhang, Yan Zeng, Yue Wang, Meng Xiang, Di Lin, Songnian Fu, Yuwen Qin. Differential mode-gain equalization via femtosecond laser micromachining-induced refractive index tailoring[J]. Light: Advanced Manufacturing 5, 14(2024). doi: 10.37188/lam.2024.014

04

Breaking the speed limitation of wavemeter through spectra-space-time mapping

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?https://doi.org/10.37188/lam.2024.013?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Zheng Gao, Ting Jiang, Mingming Zhang, Yuxuan Xiong, Hao Wu, Ming Tang. Breaking the speed limitation of wavemeter through spectra-space-time mapping[J]. Light: Advanced Manufacturing 4, 13(2024). doi: 10.37188/lam.2024.013

05

Accuracy verification methodology for computer-generated hologram used for testing a 3.5-meter mirror based on an equivalent element

Öйú¿ÆÑ§Ôº³¤´º¹âѧϸÃÜ»úеÓëÎïÀíÑо¿Ëù¹âѧϵͳÏȽøÖÆÔìÖØµãʵÑéÊÒÕÅѧ¾üԺʿÍŶÓ

 

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https://doi.org/10.37188/lam.2024.025

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Kai Xu, Haixiang Hu, Xin Zhang, Hongda Wei, Zhiyu Zhang, Xuejun Zhang. Accuracy verification methodology for computer-generated hologram used for testing a 3.5-meter mirror based on an equivalent element[J]. Light: Advanced Manufacturing 5, 25(2024). doi: 10.37188/lam.2024.025

06

3D micro-devices for enhancing the lateral resolution in optical microscopy

Ï£À°Ñо¿ºÍÊÖÒÕ»ù½ð»á-µç×ӽṹÓ뼤¹âÑо¿ËùµÄGordon ZylaÍŶÓ

 

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https://doi.org/10.37188/lam.2024.01?9

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Gordon Zyla, G?ran Maconi, Anton Nolvi, Jan Marx, Dimitra Ladika, Ari Salmi, Vasileia Melissinaki, Ivan Kassamakov, Maria Farsari. 3D micro-devices for enhancing the lateral resolution in optical microscopy[J]. Light: Advanced Manufacturing 5, 19(2024). doi£º10.37188/lam.2024.019

07

Single-shot 3D incoherent imaging with diffuser endoscopy

µÂ¹úµÂÀÛ˹¶Ù¹¤Òµ´óѧµÄRobert KuschmierzÓëTom GlosemeyerÍŶÓ

 

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¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Julian Lich, Tom Glosemeyer, J¨¹rgen Czarske, Robert Kuschmierz. Single-shot 3D incoherent imaging with diffuser endoscopy[J]. Light: Advanced Manufacturing 5, 15(2024). doi: 10.37188/lam.2024.015

08

Laser speckle grayscale lithography: a new tool for fabricating highly sensitive flexible capacitive pressure sensors

ɽÎ÷´óѧÁ¿×Ó¹âѧÓë¹âÁ¿×ÓÆ÷¼þ¹ú¼ÒÖØµãʵÑéÊÒÙÚÕÙÃñÍŶÓ

 

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?https://doi.org/10.37188/lam.2024.016?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Yong Zhou, Kun Wang, Junkun Mao, Yifei Ma, Mei Wang, Suotang Jia, Xuyuan Chen, Zhaomin Tong. Laser speckle grayscale lithography: a new tool for fabricating highly sensitive flexible capacitive pressure sensors[J]. Light: Advanced Manufacturing 5, 16(2024). doi: 10.37188/lam.2024.016

09

Ultrafast laser-induced decomposition for selective activation of GaAs

±±¾©Àí¹¤´óѧµÄÐì¿ÉÃ×½ÌÊÚÍŶӺͼªÁÖ´óѧµÄÍõÀÚ¸±½ÌÊÚÍŶÓ

 

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?https://doi.org/10.37188/lam.2024.026?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Ke-Mi Xu, Chao Liu, Lei Wang, Feng-Chun Pang, Xin-Jing Zhao, Xian-Bin Li, Qi-Dai Chen, Wei-Qian Zhao. Ultrafast laser-induced decomposition for selective activation of GaAs[J]. Light: Advanced Manufacturing 5, 26(2024). doi: 10.37188/lam.2024.026

10

Functional plastic films: nano-engineered composite based flexible microwave antennas with near-unity relative visible transmittance

»ªÖпƼ¼´óѧÕųϽÌÊÚ¡¢ÃÀ¹úÒÁÀûŵÒÁ´óѧ֥¼Ó¸ç·ÖУPai-Yen Chen½ÌÊÚ¼°ÃÀ¹úÃÜЪ¸ù´óѧL. Jay Guo½ÌÊÚÍŶÓ

 

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?https://doi.org/10.37188/lam.2024.036?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Cheng Zhang, Liang Zhu, Chengang Ji, Zhilu Ye, Nabeel Alsaab, Minye Yang, Yuhui Hu, Pai-Yen Chen, L. Jay Guo. Functional plastic films: nano-engineered composite based flexible microwave antennas with near-unity relative visible transmittance[J]. Light: Advanced Manufacturing 5, 36(2024). doi: 10.37188/lam.2024.036

11

Parallel fabrication of silica optical microfibers and nanofibers

Õã½­´óѧ¹ùÐÀ½ÌÊÚºÍͯÀûÃñ½ÌÊÚÍŶÓ

 

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?https://doi.org/10.37188/lam.2024.020?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Hubiao Fang, Yu Xie, Zipei Yuan, Dawei Cai, Jianbin Zhang, Xin Guo, Limin Tong. Parallel fabrication of silica optical microfibers and nanofibers [J]. Light: Advanced Manufacturing5, 20(2024). doi: 10.37188/lam.2024.020

12

A shoe-box-sized 3D laser nanoprinter based on two-step absorption£¨Ë«²½ÎüÊÕÊÖÒÕµÄÏ£ÍûʵÏÖÁËЬºÐ¾ÞϸµÄÈýά¼¤¹âÄÉÃ×´òÓ¡»ú£©

µÂ¹ú¿¨¶û˹³¶òÀí¹¤Ñ§ÔºTobias Messer½ÌÊÚºÍMartin WegenerԺʿÍŶÓ

 

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?https://doi.org/10.37188/lam.2024.027?

 

¡¸Ïà¹ØÂÛÎÄÐÅÏ¢¡¹Tobias Messer, Michael Hippe, Jingya (Lilyn) Gao, Martin Wegener. A shoe-box-sized 3D laser nanoprinter based on two-step absorption[J]. Light: Advanced Manufacturing 5, 27(2024). doi: 10.37188/lam.2024.027


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