Computational modeling of optical projection tomographic microscopy using the finite difference time domain method

被引:8
作者
Coe, Ryan L. [1 ]
Seibel, Eric J. [2 ]
机构
[1] Univ Washington, Dept Bioengn, Human Photon Lab, Seattle, WA 98195 USA
[2] Univ Washington, Human Photon Lab, Dept Mech Engn, Seattle, WA 98195 USA
基金
美国国家科学基金会;
关键词
LORENZ-MIE THEORY; NEAR-FIELD; NUMERICAL-SIMULATION; MAXWELLS EQUATIONS; LIGHT-SCATTERING; REFRACTIVE-INDEX; DIFFRACTION; CELLS; IMAGE; TRANSFORMATION;
D O I
10.1364/JOSAA.29.002696
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We present a method for modeling image formation in optical projection tomographic microscopy (OPTM) using high numerical aperture (NA) condensers and objectives. Similar to techniques used in computed tomography, OPTM produces three-dimensional, reconstructed images of single cells from two-dimensional projections. The model is capable of simulating axial scanning of a microscope objective to produce projections, which are reconstructed using filtered backprojection. Simulation of optical scattering in transmission optical microscopy is designed to analyze all aspects of OPTM image formation, such as degree of specimen staining, refractive-index matching, and objective scanning. In this preliminary work, a set of simulations is performed to examine the effect of changing the condenser NA, objective scan range, and complex refractive index on the final reconstruction of a microshell with an outer radius of 1.5 mu m and an inner radius of 0.9 mu m. The model lays the groundwork for optimizing OPTM imaging parameters and triaging efforts to further improve the overall system design. As the model is expanded in the future, it will be used to simulate a more realistic cell, which could lead to even greater impact. (c) 2012 Optical Society of America
引用
收藏
页码:2696 / 2707
页数:12
相关论文
共 42 条
[1]   A PERFECTLY MATCHED LAYER FOR THE ABSORPTION OF ELECTROMAGNETIC-WAVES [J].
BERENGER, JP .
JOURNAL OF COMPUTATIONAL PHYSICS, 1994, 114 (02) :185-200
[2]  
Born M., 1980, ELECTROMAGNETIC THEO
[3]   Microscopic Imaging and Spectroscopy with Scattered Light [J].
Boustany, Nada N. ;
Boppart, Stephen A. ;
Backman, Vadim .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, VOL 12, 2010, 12 :285-314
[4]   A self-assembled microlensing rotational probe [J].
Brody, JP ;
Quake, SR .
APPLIED PHYSICS LETTERS, 1999, 74 (01) :144-146
[5]   Generation of an incident focused light pulse in FDTD [J].
Capoglu, Ilker R. ;
Taflove, Allen ;
Backman, Vadim .
OPTICS EXPRESS, 2008, 16 (23) :19208-19220
[6]   The Microscope in a Computer: Image Synthesis from Three-Dimensional Full-Vector Solutions of Maxwell's Equations at the Nanometer Scale [J].
Capoglu, Ilker R. ;
Rogers, Jeremy D. ;
Taflove, Allen ;
Backman, Vadim .
PROGRESS IN OPTICS, VOL 57, 2012, 57 :1-91
[7]  
Capoglu IR, 2011, OPT LETT, V36, P1596, DOI 10.1364/OL.36.001596
[8]   Tomographic phase microscopy [J].
Choi, Wonshik ;
Fang-Yen, Christopher ;
Badizadegan, Kamran ;
Oh, Seungeun ;
Lue, Niyom ;
Dasari, Ramachandra R. ;
Feld, Michael S. .
NATURE METHODS, 2007, 4 (09) :717-719
[9]   Resolving interparticle position and optical forces along the axial direction using optical coherence gating [J].
Chow, T. H. ;
Lee, W. M. ;
Tan, K. M. ;
Ng, B. K. ;
Sheppard, C. J. R. .
APPLIED PHYSICS LETTERS, 2010, 97 (23)
[10]   Improved near-field calculations using vectorial diffraction integrals in the finite-difference time-domain method [J].
Coe, Ryan L. ;
Sebiel, Eric J. .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2011, 28 (08) :1776-1783