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苏州大学 江苏省先进机器人技术重点实验室&苏州纳米科技协同创新中心, 江苏 苏州 215021
[ "陈涛(1980-), 男, 河南三门峡人, 副教授, 2004年、2006年、2010年于哈尔滨工业大学分别获得学士、硕士、博士学位, 主要从事微纳定位及微纳操作等研究。E-mail:chent@suda.edu.cn" ]
杨湛(1981-), 男, 黑龙江哈尔滨人, 副教授, 2004年于哈尔滨理工大学获得学士学位, 2010年、2013年于日本名古屋大学分别获得硕士、博士学位, 主要从事微纳米系统工程、微纳机器人的研究。E-mail:yangzhan@suda.edu.cn YANG Zhan, E-mail:yangzhan@suda.edu.cn
收稿日期:2017-12-29,
录用日期:2018-2-2,
纸质出版日期:2018-05-25
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陈涛, 孟凯, 杨湛, 等. 面向超分辨光学成像的浸没微球透镜控制[J]. 光学 精密工程, 2018,26(5):1106-1112.
Tao CHEN, Kai MENG, Zhan YANG, et al. Control of liquid-immersed submerged microsphere for super-resolution optical imaging[J]. Optics and precision engineering, 2018, 26(5): 1106-1112.
陈涛, 孟凯, 杨湛, 等. 面向超分辨光学成像的浸没微球透镜控制[J]. 光学 精密工程, 2018,26(5):1106-1112. DOI: 10.3788/OPE.20182605.1106.
Tao CHEN, Kai MENG, Zhan YANG, et al. Control of liquid-immersed submerged microsphere for super-resolution optical imaging[J]. Optics and precision engineering, 2018, 26(5): 1106-1112. DOI: 10.3788/OPE.20182605.1106.
微球透镜配合传统光学显微镜可以采集到衍射极限以下的超分辨光学图像,为了精确控制微球透镜在样品表面的位置,同时扩大超分辨成像范围,提出了一种控制微球透镜的方法,结合多轴微动平台实现微球透镜的精确定位与成像扫描操作。通过光学仿真分析了微球透镜超分辨成像效果,并对精密微动平台进行了运动学分析。为了提高超分辨成像效果,将微球透镜浸没于液体介质中,并对在液体中运动的微球透镜进行力学分析。通过实验,清晰分辨出130 nm(~
λ
/4)的蓝光光碟条纹间隙,证明了微球透镜具有超分辨成像能力,结果表明,微球透镜可以在传统光学显微镜的基础上进一步提高约3.52倍的放大倍数。通过控制微球透镜以5×10
-6
m/s的速度在液体中按“S”型轨迹移动,实现了对一个视场内样品的超分辨成像,此控制方法可以精确控制微球透镜的运动,通过扫描的方式可以扩大微球透镜的观测范围,提高观测速度。
Images with resolution beyond the diffraction limit can be achieved by combining conventional microscopy with a microsphere. In order to position the microsphere on the field of interest of the sample surface and to expand the observation area
a method to manipulate the microsphere by combining it with a multi-axis translation stage was proposed in this paper. Images were obtained by scanning the microsphere
which was positioned accurately by driving the translation stage with four degrees of freedom. The influence of the probe on the super-resolution image was analyzed by performing an optical simulation. Kinematic analysis of the translation stage was studied for determining the manipulation strategy of the microsphere. Force analysis of the microsphere in a liquid medium was carried out to evaluate the possibility of detachment of the microsphere from the probe. By using a microsphere
the gap between the Blu-ray disc stripes could be clearly observed. The experimental results indicate that the amplification factor of the microsphere is 3.52 and a resolution of 130 nm (approximately
λ
/4) can be achieved. In addition
by scanning the microsphere along the S-shaped trajectory at a speed of 5×10
-6
m/s over the sample surface
the super-resolution image over a large continuous area was achieved. Therefore
by using this method
the imaging area could be expanded and the observation efficiency was improved.
THIBAULT P, GUIZAR-SICAIROS M, MENZEL A. Coherent imaging at the diffraction limit[J]. Journal of Synchrotron Radiation , 2014, 21(Pt 5):1011-1018.
李海, 张宪民, 黄沿江, 等.光学显微线条纹图像中心线提取[J].光学 精密工程, 2017, 25(5):1340-1347.
LI H, ZHANG X M, HUANG Y J, et al .. Centerline extraction of stripe imaged by optical microscope[J]. Opt. Precision Eng ., 2017, 25(5):1340-1347. (in Chinese)
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李辉, 桂征宇, 梁永, 等.单分散上转换纳米荧光微粒的荧光寿命测量[J].光学 精密工程, 2017, 25(2):319-324.
LI H, GUI ZH Y, LIANG Y, et al .. Measurement of fluorescence life time of single up-conversion nanoparticle[J]. Opt. Precision Eng ., 2017, 25(2):319-324. (in Chinese)
CHEN K, KROMIN A, ULMER M P, et al .. Nanoparticle sizing with a resolution beyond the diffraction limit using UV light scattering spectroscopy[J]. Optics Communications , 2016, 228(1-3):1-7.
WANG Z B, GUO W, LI L, et al .. Optical virtual imaging at 50 nm lateral resolution with a white-light nanoscope[J]. Nature Communications , 2011, 2:218.
HAO X, KUANG C F, LIU X, et al .. Microsphere based microscope with optical super-resolution capability[J]. Applied Physics Letters , 2011, 99(20):203102.
DARAFSHEH A. Influence of the background medium on imaging performance of microsphere-assisted super-resolution microscopy[J]. Optics Letters , 2017, 42(4):735-738.
LEE J Y, HONG B H, KIM W Y, et al .. Near-field focusing and magnification through self-assembled nanoscale spherical lenses[J]. Nature , 2009, 460(7254):498-501.
YANG H, TROUILLON R, HUSZKA G, et al .. Super-resolution imaging of a dielectric microsphere is governed by the waist of its photonic nanojet[J]. Nano Letters , 2016, 16(8):4862-4870.
YANG H, TROUILLON R, HUSZKA G, et al .. Super-resolution imaging of a dielectric microsphere is governed by the waist of its photonic nanojet[J]. Nano Letters , 2016, 16(8):4862-4870.
YANG H, GIJS M A M. Optical microscopy using a glass microsphere for metrology of sub-wavelength nanostructures[J]. Microelectronic Engineering , 2015, 143:86-90.
DENAVIT J, HARTENBERG R S. A kinematic notation for lower-pair mechanisms based on matrices[J]. Journal of Applied Mechanics , 1955, 22:215-221.
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