Ultrafast two-dimensional imaging for surface defects measurement of mirrors based on a virtually imaged phased-array

被引:1
作者
Zou, W. E. N. C. H. A. O. [1 ,2 ]
Peng, C. H. E. N. [2 ]
Liu, A., I [3 ]
Zhu, R. I. H. O. N. G. [1 ]
Ma, J. U. N. [1 ]
Gao, L. E., I [3 ]
机构
[1] Nanjing Univ Sci & Technol, Sch Elect Engn & Optoelect Technol, Nanjing 210094, Jiangsu, Peoples R China
[2] China Acad Engn Phys, Inst Appl Elect, Mianyang 621900, Sichuan, Peoples R China
[3] Chongqing Univ, Key Lab Optoelect Technol & Syst, Minist Educ, Chongqing 400044, Peoples R China
关键词
LASER; DISPERSION; DAMAGE; PHOTOGRAPHY; INSPECTION;
D O I
10.1364/OE.469315
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Single-shot measurement of surface defects of mirrors is vital for monitoring the operating states of high power lasers systems. While conventional methods suffer from low speed and small dynamic range. Here, we demonstrate a method for high speed two-dimensional (2D) surface amplitude-type defects measurement based on ultrafast single-pixel imaging assisted by a virtually imaged phased-array. Together with an optical grating, 2D wavelength to space mapping is achieved based on Fraunhofer far field diffraction, and the uniform broad spectrum of a home-made dissipative soliton is uniformly dispersed into the targeted mirror with one-to-one wavelength-to-space mapping. The surface amplitude-type defects are modulated into the intensity variation of the reflected spectrum. Then, we build a dispersive Fourier transform module for wavelength to time mapping, through which modulated spectral information is time stretched into the temporal domain, and recorded by a high speed photodetector together with a real time oscilloscope. Finally, to diminish the distortions induced by nonlinear dispersion during the wavelength-time mapping, we utilize the interpolation, and reconstruct the 2D surface with a frame rate of 7.6 MHz. A two-dimensional image with widths of 1.5 x 2 mm can be obtained within 10 ns, with a y direction spatial resolution of 180 mu m and a x direction spatial resolution of 140 mu m. This ultrafast 2D surface defects measurement scheme is promising for real-time monitoring of surface defects mirrors with large aperture, which are widely utilized in various high power laser systems. (c) 2022 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
引用
收藏
页码:37235 / 37244
页数:10
相关论文
共 25 条
[1]   Multi-layer Shack-Hartmann wavefront sensing in the point source regime [J].
Akondi, Vyas ;
Dubra, Alfredo .
BIOMEDICAL OPTICS EXPRESS, 2021, 12 (01) :409-432
[2]   Ultrafast web inspection with hybrid dispersion laser scanner [J].
Chen, Hongwei ;
Wang, Chao ;
Yazaki, Akio ;
Kim, Chanju ;
Goda, Keisuke ;
Jalali, Bahram .
APPLIED OPTICS, 2013, 52 (17) :4072-4076
[3]   Final Optics Damage Inspection (FODI) for the National Ignition Facility [J].
Conder, Alan ;
Chang, Jim ;
Kegelmeyer, Laura ;
Spaeth, Mary ;
Whitman, Pam .
OPTICS AND PHOTONICS FOR INFORMATION PROCESSING IV, 2010, 7797
[4]   Polarization evolution dynamics of dissipative soliton fiber lasers [J].
Gao, Lei ;
Cao, Yulong ;
Wabnitz, Stefan ;
Ran, Hongqing ;
Kong, Lingdi ;
Li, Yujia ;
Huang, Wei ;
Huang, Ligang ;
Feng, Danqi ;
Zhu, Tao .
PHOTONICS RESEARCH, 2019, 7 (11) :1331-1339
[5]   Single-shot compressed ultrafast photography at one hundred billion frames per second [J].
Gao, Liang ;
Liang, Jinyang ;
Li, Chiye ;
Wang, Lihong V. .
NATURE, 2014, 516 (7529) :74-U159
[6]   Rear-surface laser damage on 355-nm silica optics owing to Fresnel diffraction on front-surface contamination particles [J].
Génin, FY ;
Feit, MD ;
Kozlowski, MR ;
Rubenchik, AM ;
Salleo, A ;
Yoshiyama, J .
APPLIED OPTICS, 2000, 39 (21) :3654-3663
[7]   Solid-state FMCW LiDAR with two-dimensional spectral scanning using a virtually imaged phased array [J].
Li, Zhi ;
Zang, Zihan ;
Han, Yaqi ;
Wu, Lican ;
Fu, H. Y. .
OPTICS EXPRESS, 2021, 29 (11) :16547-16562
[8]   High speed surface defects detection of mirrors based on ultrafast single-pixel imaging [J].
Liu, Ai ;
Gao, Lie ;
Zou, Wenchao ;
Huang, Jingsheng ;
Wu, Qiang ;
Cao, Yulong ;
Chang, Zhenghu ;
Peng, Chen ;
Zhu, Tao .
OPTICS EXPRESS, 2022, 30 (09) :15037-15048
[9]  
Nakagawa K, 2014, NAT PHOTONICS, V8, P695, DOI [10.1038/nphoton.2014.163, 10.1038/NPHOTON.2014.163]
[10]   Petawatt laser pulses [J].
Perry, MD ;
Pennington, D ;
Stuart, BC ;
Tietbohl, G ;
Britten, JA ;
Brown, C ;
Herman, S ;
Golick, B ;
Kartz, M ;
Miller, J ;
Powell, HT ;
Vergino, M ;
Yanovsky, V .
OPTICS LETTERS, 1999, 24 (03) :160-162