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首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Preliminary Investigations into Macroscopic Attenuated Total Reflection-Fourier Transform Infrared Imaging of Intact Spherical Domains: Spatial Resolution and Image Distortion
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Preliminary Investigations into Macroscopic Attenuated Total Reflection-Fourier Transform Infrared Imaging of Intact Spherical Domains: Spatial Resolution and Image Distortion

机译:完整球形域的宏观衰减全反射傅里叶变换红外成像的初步研究:空间分辨率和图像失真

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This paper describes preliminary investigations into the spatial resolution of macro attenuated total reflection (ATR) Fourier transform infrared (FT-IR) imaging and the distortions that arise when imaging intact, convex domains, using spheres as an extreme example. The competing effects of shallow evanescent wave penetration and blurring due to finite spatial resolution meant that spheres within the range 20-140 (mu)m all appeared to be approximately the same size (approx30-35 (mu)m) when imaged with a numerical aperture (NA) of approx0.2. A very simple model was developed that predicted this extreme insensitivity to particle size. On the basis of these studies, it is anticipated that ATR imaging at this NA will be insensitive to the size of intact highly convex objects. A higher numerical aperture device should give a better estimate of the size of small spheres, owing to superior spatial resolution, but large spheres should still appear undersized due to the shallow sampling depth. An estimate of the point spread function (PSF) was required in order to develop and apply the model. The PSF was measured by imaging a sharp interface; assuming an Airy profile, the PSF width (distance from central maximum to first minimum) was estimated to be approx20 and 30 (mu)m for IR bands at 1600 and 1000 cm~(-1), respectively. This work has two significant limitations. First, underestimation of domain size only arises when imaging intact convex objects; if surfaces are prepared that randomly and representatively section through domains, the images can be analyzed to calculate parameters such as domain size, area, and volume. Second, the model ignores reflection and refraction and assumes weak absorption; hence, the predicted intensity profiles are not expected to be accurate; they merely give a rough estimate of the apparent sphere size. Much further work is required to place the field of quantitative ATR-FT-IR imaging on a sound basis.
机译:本文以球形为例,对宏观衰减全反射(ATR)傅里叶变换红外(FT-IR)成像的空间分辨率以及在成像完整的凸域时出现的畸变进行了初步研究。有限空间分辨率引起的浅e逝波穿透和模糊的竞争效应意味着,用数字成像时,范围在20-140μm内的球体看起来几乎都具有相同的大小(大约30-35μm)。光圈(NA)约为0.2。开发了一个非常简单的模型,可以预测这种对粒度的极端不敏感。在这些研究的基础上,预计在此NA上进行ATR成像将对完整的高凸物体的大小不敏感。由于较高的空间分辨率,较高数值孔径的设备应能更好地估计小球体的大小,但由于采样深度较浅,大球体仍会显得尺寸过小。为了开发和应用该模型,需要估计点扩散函数(PSF)。通过成像清晰的界面来测量PSF;假设为艾里剖面,则对于在1600和1000 cm〜(-1)的IR波段,PSF宽度(从中心最大值到第一最小值的距离)估计分别约为20和30μm。这项工作有两个重大局限性。首先,仅当对完整的凸物体成像时才会出现对域大小的低估。如果准备的表面随机且有代表性地横切区域,则可以分析图像以计算参数,例如区域大小,面积和体积。其次,该模型忽略了反射和折射,并假设吸收较弱。因此,预计强度分布图将不准确;他们只是粗略地估计了视在球体的大小。要使ATR-FT-IR定量成像成像领域稳固地发展,还需要做更多的工作。

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