Liu Xinyu, Beaudette Kathy, Wang Xianghong, Liu Linbo, Bouma Brett E, Villiger Martin
School of Electrical & Electronic Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore.
Polytechnique Montréal, Department of Engineering Physics, P.O. Box 6079 Station Centre-Ville, Montréal, Québec H3C 3A7, Canada.
Biomed Opt Express. 2017 Sep 12;8(10):4454-4465. doi: 10.1364/BOE.8.004454. eCollection 2017 Oct 1.
Birefringence imaging, including polarization sensitive optical coherence tomography (PS-OCT), can provide valuable insight into the microscopic structure and organization of many biological tissues. In this paper, we report on a method to fabricate tissue-like birefringence phantoms for such imaging modalities. We utilize the photo-elastic effect, wherein birefringence is induced by stretching a polymer sample after heating it above its glass-transition temperature. The cooled samples stably exhibit homogeneous birefringence, and were assembled into phantoms containing multiple well-defined regions of distinct birefringence. We present planar slab phantoms for microscopy applications and cylindrical phantoms for catheter-based imaging and demonstrate quantitative analysis of the birefringence within individual regions of interest. Birefringence phantoms enable testing, validating, calibrating, and improving PS-OCT acquisition systems and reconstruction strategies.
双折射成像,包括偏振敏感光学相干断层扫描(PS-OCT),可以为许多生物组织的微观结构和组织提供有价值的见解。在本文中,我们报告了一种为这种成像方式制造组织样双折射体模的方法。我们利用光弹性效应,即在将聚合物样品加热到其玻璃化转变温度以上后拉伸,从而诱导双折射。冷却后的样品稳定地呈现均匀双折射,并被组装成包含多个具有不同双折射的明确区域的体模。我们展示了用于显微镜应用的平面平板体模和用于基于导管成像的圆柱形体模,并对各个感兴趣区域内的双折射进行了定量分析。双折射体模能够测试、验证、校准和改进PS-OCT采集系统及重建策略。