Yuan Shuai, Preza Chrysanthe
Department of Electrical and Computer Engineering, the University of Memphis, Memphis, TN 38152, USA.
Opt Express. 2011 Nov 7;19(23):23298-314. doi: 10.1364/OE.19.023298.
Wavefront encoding (WFE) with different cubic phase mask designs was investigated in engineering 3D point-spread functions (PSF) to reduce their sensitivity to depth-induced spherical aberration (SA) which affects computational complexity in 3D microscopy imaging. The sensitivity of WFE-PSFs to defocus and to SA was evaluated as a function of phase mask parameters using mean-square-error metrics to facilitate the selection of mask designs for extended-depth-of-field (EDOF) microscopy and for computational optical sectioning microscopy (COSM). Further studies on pupil phase contribution and simulated WFE-microscope images evaluated the engineered PSFs and demonstrated SA insensitivity over sample depths of 30 μm. Despite its low sensitivity to SA, the successful WFE design for COSM maintains a high sensitivity to defocus as it is desired for optical sectioning.
研究了采用不同立方相位掩模设计的波前编码(WFE)技术,以设计工程三维点扩散函数(PSF),降低其对深度诱导球差(SA)的敏感性,球差会影响三维显微镜成像的计算复杂度。使用均方误差度量,将WFE-PSF对离焦和SA的敏感性评估为相位掩模参数的函数,以方便为大景深(EDOF)显微镜和计算光学切片显微镜(COSM)选择掩模设计。对光瞳相位贡献和模拟的WFE显微镜图像的进一步研究评估了工程PSF,并证明了在30μm的样品深度范围内对SA不敏感。尽管对SA的敏感性较低,但用于COSM的成功WFE设计仍保持对离焦的高敏感性,这是光学切片所需要的。