THE EFFECT OF SB DOPING ON CRYSTAL STRUCTURE AND THE Sn4⁺ → Sb5⁺ SUBSTITUTION MODEL WITH OXYGEN DEFECT FORMATION
- 作者: Zinchenko T.O.1, Pecherskaya E.A.1, Chikhrina U.S.1, Aleksandrov V.S.1, Artamonov D.V.1
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隶属关系:
- Penza State University
- 期: 编号 3 (2025)
- 页面: 37-45
- 栏目: DESIGN AND TECHNOLOGY OF INSTRUMENTATION AND ELECTRONIC EQUIPMENT
- URL: https://journal-vniispk.ru/2307-5538/article/view/318828
- DOI: https://doi.org/10.21685/2307-5538-2025-3-5
- ID: 318828
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Background. Transparent conducting oxides (TCOs) are key functional materials for modern optoelectronic devices, including touch screens, solar cells, and light-emitting diodes. Antimony-doped tin dioxide (SnO2:Sb) is of particular interest as an alternative to the more expensive indium tin oxide (ITO) due to its high thermal and chemical stability, as well as the availability of raw materials. However, the mechanisms of Sb incorporation into the SnO2 crystal lattice and its influence on electrical and optical properties remain insufficiently studied. The objective of this research is a theoretical and experimental investigation of the substitution processes of tin atoms with antimony atoms in different oxidation states (Sb3⁺ and Sb5⁺) and the determination of optimal synthesis conditions for producing TCOs with improved characteristics. Materials and methods. Thin SnO2:Sb films were deposited using spray pyrolysis from precursor solutions of SnCl4·5H2O and SbCl3 in a mixture of ethanol and deionized water at a substrate temperature of 450 °C. The antimony concentration was varied from 0 to 10 at. %. To improve crystallinity and activate dopants, the samples were thermally annealed at 600 °C for 1 hour. The structural, electrical, and optical properties of the films were studied using a comprehensive set of advanced techniques, including surface resistance, charge carrier mobility and concentration, as well as transmission, refraction, and absorption coefficients. Results. It was found that at an optimal antimony concentration (3–5 at. %) and properly selected synthesis conditions, Sn4⁺ is predominantly substituted by Sb5⁺, leading to donor doping and a significant improvement in conductivity while maintaining high transparency in the visible range (80–90 %). At Sb concentrations above 5 at. %, the formation of compensating defects and phase segregation was observed, resulting in degraded electrical properties. Thermal annealing enhanced crystallinity, reduced defect concentration, and activated Sb dopants, leading to a decrease in resistivity from 10⁻2–10⁻3 Ω·cm to 10⁻3–10⁻4 Ω·cm. Conclusion. This study established fundamental mechanisms of antimony incorporation into the SnO2 crystal lattice and optimized spray pyrolysis synthesis parameters for producing high-quality SnO2:Sb-based TCOs. The developed material exhibits a combination of high transparency, good conductivity, and thermal stability, making it promising for various optoelectronic applications, including solar cells and touch screens. The use of cost-effective and environmentally friendly materials promotes sustainable technological development and reduces reliance on rare and expensive elements.
作者简介
Timur Zinchenko
Penza State University
编辑信件的主要联系方式.
Email: scar0243@gmail.com
Candidate of technical sciences, senior lecturer of the sub-department of information and measuring equipment and metrology
(40 Krasnaya street, Penza, Russia)Ekaterina Pecherskaya
Penza State University
Email: pea1@list.ru
Doctor of technical sciences, professor, head of the sub-department of information and measuring equipment and metrology
(40 Krasnaya street, Penza, Russia)Ulyana Chikhrina
Penza State University
Email: chikhulyana@yandex.ru
Student
(40 Krasnaya street, Penza, Russia)Vladimir Aleksandrov
Penza State University
Email: vsalexrus@gmail.com
Master degree student
(40 Krasnaya street, Penza, Russia)Dmitry Artamonov
Penza State University
Email: dmitrartamon@yandex.ru
Doctor of technical sciences, professor, first vice-rector
(40 Krasnaya street, Penza, Russia)参考
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