The traditional ptychographic imaging engine effectively improves the imaging quality and anti-noise ability of the system when the number of wavelengths involved in imaging increases, and it has been widely used in the fields of imaging and measurement. However, the complicated mechanical moving exposure method leads to jittering of the system, data acquisition inefficiency, and poor accuracy, and increase in the number of imaging wavelengths even more seriously affects the system imaging and measurement performance. In this work, the pinhole-array dual-wavelength single-shot ptychographic imaging is used. Actual optical experiments and numerical simulation demonstrate that the experimental data can be collected efficiently with double wavelength and high precision, and the drawbacks of traditional multiwavelength stack imaging are avoided. We also point out and demonstrat that, in choosing the laser wavelength involved in imaging, it is necessary to consider two important wavelength parameters, center wavelength and wavelength interval, which provides effective guidance for multiwavelength multilayer imaging technology. The pinhole-array-based single-shot ptychographic imaging with dual-wavelength has higher efficiency and a wider range of applications, compared with the traditional dual wavelength and multiwavelength ptychographic imaging engines.
LUO Yong
,
XU Wenhui
,
SHI Yishi
. Pinhole-array-based single-shot ptychography with dual-wavelenghth[J]. Journal of University of Chinese Academy of Sciences, 2019
, 36(1)
: 31
-37
.
DOI: 10.7523/j.issn.2095-6134.2019.01.006
[1] Faulkner H M, Rodenburg J M. Movable aperture lensless transmission microscopy:a novel phase retrieval algorithm[J]. Physical Review Letters, 2004, 93(2):023903.
[2] Rodenburg J M, Faulkner H M. A phase retrieval algorithm for shifting illumination[J]. Applied Physics Letters, 2004, 85(20):4795-4797.
[3] Miao J, Ishikawa T, Anderson E H, et al. Phase retrieval of diffraction patterns from noncrystalline samples using the oversampling method[J]. Physical Review B, 2003, 67(67):386-393.
[4] Rodenburg J M, Hurst A C, Cullis A G, et al. Hard-x-ray lensless imaging of extended objects[J]. Physical Review Letters, 2007, 98(3):034801.
[5] Nishino Y, Miao J, Ishikawa T. Image reconstruction of nanostructured nonperiodic objects only from over sampled hard X-ray diffraction intensities[J]. Physical Review B, 2003, 68(22):220101.
[6] Humphry M J, Kraus B, Hurst A C, et al. Ptychographic electron microscopy using high-angle dark-field scattering for sub-nanometre resolution imaging[J]. Nature Communications, 2012, 3(2):730.
[7] Maiden A M, Humphry M J, Sarahan M C, et al. An annealing algorithm to correct positioning errors in ptychography[J]. Ultramicroscopy, 2012, 120(5):64-72.
[8] Thibault P, Dierolf M, Menzel A, et al. High-resolution scanning x-ray diffraction microscopy[J]. Science, 2008, 321(5887):379-382.
[9] Shi Y, Li T, Wang Y, et al. Optical image encryption via ptychography[J]. Optics Letters, 2013, 38(9):1425-1427.
[10] Shi Y L, Dong C Z, Fritzsche S, et al. Theory of X-Ray Anisotropy and Polarization Following the Dielectronic Recombination of Initially Hydrogen-Like Ions[J]. Chin Phys Lett, 2013, 30(2):23402.
[11] Shi Y S, Wang Y L, Zhang S G. Generalized ptychography with diverse probes[J]. Chinese Physics Letters, 2013, 30(5):054203.
[12] 许文慧, 李拓, 史祎诗. 基于傅里叶叠层成像的光学图像加密[J]. 中国科学院大学学报, 2016, 33(5):612-617.
[13] 李拓, 史祎诗. Attack on optical double random phase encryption based on the principle of ptychographical imaging[J]. 中国物理快报:英文版, 2016, 33(1):63-66.
[14] Claus D, Robinson D J, Chetwynd D G, et al. Dual wavelength optical metrology using ptychography[J]. Journal of Optics, 2013, 15(3):035702.
[15] Noom D W, Boonzajer Flaes D E, Labordus E, et al. High-speed multi-wavelength Fresnel diffraction imaging[J]. Optics Express, 2014, 22(25):30504-30511.
[16] Daniel W. E. Noom, Kjeld S. E. Eikema, Witte S. Lensless phase contrast microscopy based on multiwavelength Fresnel diffraction[J]. Optics Letters, 2014, 39(2):193-196.
[17] 王东,马迎军,刘泉,史祎诗.可见光域多波长叠层衍射成像的实验研究[J].物理学报,2015,64(8):150-160.
[18] 潘安, 张晓菲, 王彬,等. 厚样品三维叠层衍射成像的实验研究[J]. 物理学报, 2016, 65(1):107-122.
[19] Liu C, Pan X C, Zhu J Q. Coherent diffractive imaging based on the multiple beam illumination with cross grating[J]. Acta Physica Sinica, 2013, 62(18):116-121.
[20] CohenO, Sidorenko P. Single-shot ptychography[J]. Optica, 2016, 3(1):9-14.
[21] 张鹏. 基于信息光学的多维数据加密及数字水印[D]. 天津:天津大学, 2006.
[22] 吕乃光. 傅里叶光学[M].3版.北京:机械工业出版社, 2016.
[23] 王雅丽, 史祎诗, 李拓,等. 可见光域叠层成像中照明光束的关键参量研究[J]. 物理学报, 2013, 62(6):201-210.
[24] 谢宗良, 马浩统, 任戈,等. 小孔扫描傅里叶叠层成像的关键参量研究[J]. 光学学报, 2015, 35(10):94-102.