Bani-Salameh Areen A, Ahmad A A, Alsaad A M, Qattan I A, Aljarrah Ihsan A
Department of Physical Sciences, Jordan University of Science & Technology, P.O. Box 3030, Irbid 22110, Jordan.
Department of Physics, Khalifa University of Science and Technology, Abu Dhabi P.O. Box 127788, United Arab Emirates.
Polymers (Basel). 2021 Apr 4;13(7):1158. doi: 10.3390/polym13071158.
We report the synthesis of hybrid thin films based on polymethyl methacrylate) (PMMA) and polystyrene (PS) doped with 1%, 3%, 5%, and 7% of cerium dioxide nanoparticles (CeO NPs). The As-prepared thin films of (PMMA-PS) incorporated with CeO NPs are deposited on a glass substrate. The transmittance T% (λ) and reflectance R% (λ) of PMMA-PS/CeO NPs thin films are measured at room temperature in the spectral range (250-700) nm. High transmittance of 87% is observed in the low-energy regions. However, transmittance decreases sharply to a vanishing value in the high-energy region. In addition, as the CeO NPs concentration is increased, a red shift of the absorption edge is clearly observed suggesting a considerable decrease in the band gap energy of PMMA-PS/CeO NPs thin film. The optical constants (n and k) and related key optical and optoelectronic parameters of PMMA-PS/Ce NPs thin films are reported and interpreted. Furthermore, Tauc and Urbach models are employed to elucidate optical behavior and calculate the band gaps of the as-synthesized nanocomposite thin films. The optical band gap energy of PMMA-PS thin film is found to be 4.03 eV. Optical band gap engineering is found to be possible upon introducing CeO NPs into PMMA-PS polymeric thin films as demonstrated clearly by the continuous decrease of optical band gap upon increasing CeO content. Fourier-transform infrared spectroscopy (FTIR) analysis is conducted to identify the major vibrational modes of the nanocomposite. The peak at 541.42 cm is assigned to Ce-O and indicates the incorporation of CeO NPs into the copolymers matrices. There were drastic changes to the width and intensity of the vibrational bands of PMMA-PS upon addition of CeO NPs. To examine the chemical and thermal stability, thermogravimetric (TGA) thermograms are measured. We found that (PMMA-PVA)/CeO NPs nanocomposite thin films are thermally stable below 110 °C. Therefore, they could be key candidate materials for a wide range of scaled multifunctional smart optical and optoelectronic devices.
我们报道了基于聚甲基丙烯酸甲酯(PMMA)和聚苯乙烯(PS)并掺杂1%、3%、5%和7%二氧化铈纳米颗粒(CeO NPs)的混合薄膜的合成。将制备好的掺入CeO NPs的(PMMA - PS)薄膜沉积在玻璃基板上。在室温下,于(250 - 700)nm光谱范围内测量PMMA - PS/CeO NPs薄膜的透过率T%(λ)和反射率R%(λ)。在低能量区域观察到高达87%的高透过率。然而,在高能量区域透过率急剧下降至零值。此外,随着CeO NPs浓度增加,明显观察到吸收边的红移,这表明PMMA - PS/CeO NPs薄膜的带隙能量显著降低。报道并解释了PMMA - PS/Ce NPs薄膜的光学常数(n和k)以及相关的关键光学和光电子参数。此外,采用Tauc和Urbach模型来阐明光学行为并计算合成的纳米复合薄膜的带隙。发现PMMA - PS薄膜的光学带隙能量为4.03 eV。如通过增加CeO含量时光学带隙的持续降低所清楚表明的,将CeO NPs引入PMMA - PS聚合物薄膜后发现光学带隙工程是可行的。进行傅里叶变换红外光谱(FTIR)分析以识别纳米复合材料的主要振动模式。541.42 cm处的峰归属于Ce - O,表明CeO NPs掺入了共聚物基体中。添加CeO NPs后,PMMA - PS振动带的宽度和强度发生了剧烈变化。为了研究化学和热稳定性,测量了热重(TGA)热谱图。我们发现(PMMA - PVA)/CeO NPs纳米复合薄膜在110℃以下是热稳定的。因此,它们可能是各种规模化多功能智能光学和光电器件的关键候选材料。