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Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials

机译:在聚合物材料中嵌入散射微球的多层光学组织模型的制备和表征

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摘要

We report on a novel fabrication approach to build multilayered optical tissue phantoms that serve as independently validated test targets for axial resolution and contrast in scattering measurements by depth-resolving optical coherent tomography (OCT) with general applicability to a variety of three-dimensional optical sectioning platforms. We implement a combinatorial bottom-up approach to prepare monolayers of light-scattering microspheres with interspersed layers of transparent polymer. A dense monolayer assembly of monodispersed microspheres is achieved via a combined methodology of polyelectrolyte multilayers (PEMs) for particle-substrate binding and convective particle flux for two-dimensional crystal array formation on a glass substrate. Modifications of key parameters in the layer-by-layer polyelectrolyte deposition approach are applied to optimize particle monolayer transfer from a glass substrate into an elastomer while preserving the relative axial positioning in the particle monolayer. Varying the dimensions of the scattering microspheres and the thickness of the intervening transparent polymer layers enables different spatial frequencies to be realized in the transverse dimension of the solid phantoms. Step-wise determination of the phantom dimensions is performed independently of the optical system under test to enable precise spatial calibration, independent validation, and quantitative dimensional measurements.
机译:我们报告了一种新颖的制造方法,用于构建多层光学组织体模,这些体模可以作为通过深度解析光学相干断层扫描(OCT)进行散射测量的轴向分辨率和对比度的独立验证测试目标,并普遍适用于各种三维光学切片平台。我们实现了一种组合式自下而上的方法,以制备散布有透明聚合物层的光散射微球单层。通过用于颗粒-基底结合的聚电解质多层(PEM)和用于在玻璃基底上形成二维晶体阵列的对流颗粒通量的组合方法,可以实现单分散微球的致密单层组装。应用逐层聚电解质沉积方法中关键参数的修改,以优化从玻璃基板到弹性体的颗粒单层转移,同时保留在颗粒单层中的相对轴向位置。改变散射微球的尺寸和插入的透明聚合物层的厚度使得能够在固体模型的横向尺寸上实现不同的空间频率。模体尺寸的逐步确定独立于被测光学系统执行,以实现精确的空间校准,独立验证和定量尺寸测量。

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