Spectroscopic ellipsometric study datasets of the fluorinated polymers: Bifunctional urethane methacrylate perfluoropolyether (PFPE) and polyvinylidene fluoride (PVDF).

Spectroscopic ellipsometric study datasets of the fluorinated polymers: Bifunctional urethane methacrylate perfluoropolyether (PFPE) and polyvinylidene fluoride (PVDF).
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DOI:
10.1016/j.dib.2021.107461
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发表时间:
2021-12
期刊:
影响因子:
1.2
通讯作者:
Marques-Hueso J
Marques-Hueso J
中科院分区:
其他
文献类型:
--
作者:
Gibbons J;Patterson SBH;Zhakeyev A;Vilela F;Marques-Hueso J

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本工作中的数据集包含实验测量的(真实的)折射率、光透射强度和双官能度聚氨酯甲基丙烯酸酯全氟聚醚的光吸收光谱(PFPE; Fluorolink® MD 700)的底物(0.98 ± 0.13)mm厚,聚偏氟乙烯(PVDF; Kynar® 705)薄膜,厚度为(4.47 ± 0.29)μm,光谱范围为300 nm至1000 nm,通过可变角度光谱椭圆偏振法测量。折射率数据通过采用基于单个柯西光学常数函数的层,使用Levenberg-Marquardt多迭代回归算法来确定所有模型最小化。均方误差(MSE)被用作最大似然估计,当连续迭代无法改善MSE时,Levenberg-Marquardt算法达到收敛。评价所得最佳拟合参数值的灵敏度(表示为置信限)和可能的相关性。此外,实验测得的光学透射强度和确定的PFPE和PVDF的光吸收,从300 nm到1000 nm的光谱范围内,也提出了,通过椭圆偏振测量和校正使用菲涅尔方程,以适应表面干涉。考虑到所发现的PFPE的(88.4 ± 0.5)%和PVDF的(95.6 ± 0.6)%的高透射率,以及所发现的PFPE的低折射率1.27(λ = 589.3 nm);认为这些数据集可用于光学应用,例如用于光固化合成工艺,或用作光致发光化合物的主体基质材料。
The datasets in this work contain the experimentally measured (real) refractive indices, optical transmission intensity, and optical absorption spectra of bifunctional urethane methacrylate perfluoropolyether (PFPE; Fluorolink® MD700) substrate of (0.98 ± 0.13) mm thickness and polyvinylidene fluoride (PVDF; Kynar® 705) thin-film of (4.47 ± 0.29) µm thickness over a spectral range from 300 nm to 1000 nm, as measured via variable angle spectroscopic ellipsometry. The refractive indices data were determined by employing a single Cauchy optical constants function based layer using a Levenberg-Marquardt multi-iterative regression algorithm for all model minimizations. The mean-squared error (MSE) was used as the maximum likelihood estimator, with a convergence of the Levenberg-Marquardt algorithm reached when successive iterations were unable to improve the MSE. The resulting best-fit parameter values were evaluated for sensitivity (expressed as a confidence limit), and possible correlations. Furthermore, the experimentally measured optical transmission intensity and determined optical absorption of PFPE and PVDF, over a spectral range from 300 nm to 1000 nm, is also presented, as measured via ellipsometry and corrected using Fresnel equations to accommodate surface interference. Given the high transmission of (88.4 ± 0.5)% for PFPE and (95.6 ± 0.6) % for PVDF found, and the low refractive index 1.27 (λ = 589.3 nm) found for PFPE; it is thought that these datasets may be useful for optical applications, such as for photo-curable synthesis processes, or being used as a host-matrix material for photoluminescent compounds.
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