Temperature-dependent optical properties of TiO2 nanoparticles: a study of band gap evolution

被引:0
作者
Mehmet Isik
Serdar Delice
Nizami Gasanly
机构
[1] Atilim University,Department of Electrical and Electronics Engineering
[2] Hitit University,Department of Physics
[3] Middle East Technical University,Department of Physics
[4] Virtual International Scientific Research Centre,undefined
[5] Baku State University,undefined
来源
Optical and Quantum Electronics | 2023年 / 55卷
关键词
TiO; Nanoparticles; Optical properties; Band gap energy; Optoelectronic;
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摘要
In this study, we present the first comprehensive investigation of the temperature-dependent band gap energy of anatase TiO2 nanoparticles, utilizing transmission measurements in the range of 10–300 K. X-ray diffraction pattern exhibited nine peaks related to tetragonal crystal structure. Scanning electron microscope image showed that the nanoparticles with the dimensions of 25–50 nm were found as micrometer sized agglomerated. When the spectrum obtained as a result of the transmission measurements was analyzed, it was seen that the band gap energy decreased from 3.29(5) to 3.26(6) eV as the temperature was increased from 10 to 300 K. Temperature-band gap dependence was analyzed using Varshni and O’Donnell-Chen optical models and optical parameters of the TiO2 nanoparticles like absolute zero band gap energy, rate of change of band gap with temperature and average phonon energy were reported.
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[1]  
Cha SH(2019)Scaling the Equivalent Oxide Thickness by employing a TiO Phys. Status Solidi RRL 13 1900282-1356
[2]  
An CH(2022) Thin Film on a ZrO Optik 270 169990-178
[3]  
Cho ST(2023)-Al J. Electron. Mater 52 1347-6115
[4]  
Kim DG(2022)O Optik 258 168811-334
[5]  
Kwon DS(2016)-Based Dielectric for further scaling of dynamic Random Access Memory Nanoscale Res. Lett 11 140-23514
[6]  
Lim JI(2022)Design, fabrication and characterization of nanostructured SiO Phys. B 631 413716-2455
[7]  
Jeon W(2019)/TiO Laser Technol 118 170-1486
[8]  
Hwang CS(2022)/ITO conductive Bragg reflectors for optoelectronic applications Opt. Mater 133 112983-11767
[9]  
Drikvand T(2021)Surface-Engineered TiO Phys. B 602 412465-93
[10]  
Zadsar M(2022) for high-performance flexible supercapacitor applications Phys. B 639 414008-undefined