Abuelwafa Amr Attia, Elnobi Sahar, Santos M Amélia, Alsoghier Hesham M
Nano & Thin Film Lab, Physics Department, Faculty of Science, South Valley University, Qena, 83523, Egypt.
Physics Department, Faculty of Science, South Valley University, Qena, 83523, Egypt.
Sci Rep. 2023 Aug 10;13(1):12973. doi: 10.1038/s41598-023-39027-3.
In this study, 4-phenylthiazol-2-yl-(phenylhydrazono) acetonitrile (PTPA) azo dye was synthesized and studied from optical and electrical point of view. The tautomerization phenomenon of the PTPA dye was clarified using one-dimensional (1D) and two-dimensional (2D) nuclear magnetic resonance (HNMR and C NMR), absorbance (UV-Vis), emission, and Fourier transform infrared spectroscopy (FT-IR). X-ray diffraction (XRD) evaluations were indicated that PTPA in powder and thin films crystallizes in a monoclinic system structure with nonstructural characteristics. Spectrophotometric measurements of absorbance A (λ), transmittance T (λ) and reflectance R (λ) at normal incidence light in the wavelength range 200-2500 nm were used to determine the optical band gap, extinction coefficient, k and refractive index, n. Also, non-linear optical parameters such as the third order non-linear susceptibility, χ and nonlinear refractive index, n of PTPA have revealed an awe-inspiring switching behavior, implying the possibility of using PTPA in optical switching systems. Finally, the electrical conductivity of the PTPA was shown to increase with rising temperature, indicating that it is a typical organic semiconductor. Mott's parameters were determined and discussed at low temperatures. Thus, PTPA is a promising organic semiconductor with broad utility potential in organic electronics such as organic light-emitting diodes (OLEDs).
在本研究中,合成了4-苯基噻唑-2-基-(苯腙)乙腈(PTPA)偶氮染料,并从光学和电学角度对其进行了研究。使用一维(1D)和二维(2D)核磁共振(HNMR和C NMR)、吸光度(UV-Vis)、发射光谱和傅里叶变换红外光谱(FT-IR)阐明了PTPA染料的互变异构现象。X射线衍射(XRD)评估表明,粉末和薄膜中的PTPA以具有非结构特征的单斜晶系结构结晶。在200-2500nm波长范围内,使用分光光度法测量垂直入射光下的吸光度A(λ)、透射率T(λ)和反射率R(λ),以确定光学带隙、消光系数k和折射率n。此外,PTPA的三阶非线性极化率χ和非线性折射率n等非线性光学参数显示出令人惊叹的开关行为,这意味着PTPA有可能用于光开关系统。最后,PTPA的电导率随温度升高而增加,表明它是一种典型的有机半导体。在低温下确定并讨论了莫特参数。因此,PTPA是一种有前途的有机半导体,在有机发光二极管(OLED)等有机电子领域具有广泛的应用潜力。