Nath S D, Bhuiyan A H
Department of Physics, Khulna University of Engineering & Technology (KUET), Khulna 9203, Bangladesh.
Department of Physics, Bangladesh University of Engineering and Technology (BUET), Dhaka 1000, Bangladesh.
Heliyon. 2024 Mar 27;10(7):e28777. doi: 10.1016/j.heliyon.2024.e28777. eCollection 2024 Apr 15.
This work reports the structural characteristics, surface morphology, linear and nonlinear optical properties of 110 to 225 nm thick plasma polymerized methyl acrylate (PPMA) thin films. X-ray diffraction analyses confirm the amorphous nature of the films. Field emission scanning electron micrographs of the films display cluster-based surface morphology. Attenuated total reflectance Fourier transform infrared spectroscopy confirms the chemical structural changes in the films. The optical properties were studied based on the absorbance, transmittance, and reflectance spectra measured by an ultraviolet-visible spectrophotometer within the wavelength ranges from 200 to 800 nm. The direct optical band gap and Urbach values are increased from 3.66 to 3.83 eV and 0.28 to 0.45 eV, respectively with increasing film thickness. The extinction coefficient and refractive index were evaluated, and discussed a correlation between the refractive index and the optical bandgap. The real and imaginary dielectric constants, volume/surface energy loss functions and skin depth were deduced. The oscillator energies and parameters were analyzed using the concept of Wemple-DiDomenico and Sellmeier models, respectively for a single oscillator. Static linear refractive index for the studied films exhibits normal dispersion behavior with film thicknesses and satisfied Moss, Ravindra-Gupta, and Herve-Vandamme rules. The linear susceptibility, third-order nonlinear susceptibility and the non-linear refractive index are considerably reduced from 0.20, 29.5 × 10 esu, and 5.89 × 10 esu with increasing optical band gap energies. The outcomes from the analyses of PPMA demonstrated their potential for usage in electronic, optoelectronic, and non-linear device applications.
这项工作报道了厚度在110至225纳米之间的等离子体聚合丙烯酸甲酯(PPMA)薄膜的结构特征、表面形态、线性和非线性光学性质。X射线衍射分析证实了薄膜的非晶性质。薄膜的场发射扫描电子显微镜图像显示出基于团簇的表面形态。衰减全反射傅里叶变换红外光谱证实了薄膜中的化学结构变化。基于紫外可见分光光度计在200至800纳米波长范围内测量的吸光度、透过率和反射率光谱研究了光学性质。随着薄膜厚度增加,直接光学带隙和乌尔巴赫值分别从3.66电子伏特增加到3.83电子伏特,从0.28电子伏特增加到0.45电子伏特。评估了消光系数和折射率,并讨论了折射率与光学带隙之间的相关性。推导了实部和虚部介电常数、体积/表面能量损失函数和趋肤深度。分别使用Wemple-DiDomenico和Sellmeier模型的概念分析了单振子的振子能量和参数。所研究薄膜的静态线性折射率随薄膜厚度呈现正常色散行为,并符合莫斯、拉温德拉-古普塔和埃尔韦-万丹姆规则。随着光学带隙能量增加,线性极化率、三阶非线性极化率和非线性折射率从0.20、29.5×10 esu和5.89×10 esu大幅降低。对PPMA的分析结果表明了它们在电子、光电子和非线性器件应用中的潜在用途。