Enhancing Structural Integrity, Optical Properties, and Room Temperature Formaldehyde Sensing Through Optimized Spray Deposition Rates

D. Rajkumar, Umamahesvari Hemakumar
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Abstract

This study explores the impact of deposition rate on the properties of TiO2 thin films produced via spray pyrolysis, focusing on their application in gas sensors. The analysis covers structural, morphological, optical, and gas sensing characteristics of TiO2 films deposited at rates between 1 and 2.5 ml/min. Studies show optimizing TiO2 film deposition rates at 2 ml/min significantly enhances formaldehyde detection, improving selectivity and achieving a rapid response of 7.52 at 20 ppm concentration. This study underscores the pivotal role of deposition rate optimization in augmenting the gas-sensing efficacy of TiO2 films, particularly for formaldehyde detection at ambient conditions. Optimal deposition rates are instrumental in enhancing sensor performance. The synergistic application of XRD and Raman spectroscopy unequivocally confirmed the presence of the TiO2 anatase phase, which is of paramount significance in gas sensing applications. FESEM furnished high-resolution insights into the surface morphology, revealing a spherical architecture. Furthermore, UV-Vis spectroscopy was employed to assess the optical band gap of the films, which exhibited a decrement correlating with the rate of deposition. Notably, a deposition rate of 2 ml/min markedly improved the TiO2 films' sensing performance. These insights are critical for developing cost-effective, high-performance gas sensors for cutting-edge applications.
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通过优化喷涂沉积速率提高结构完整性、光学性能和室温甲醛传感能力
本研究探讨了沉积速率对喷雾热解法生产的二氧化钛薄膜特性的影响,重点是其在气体传感器中的应用。分析涵盖了以 1 至 2.5 毫升/分钟的速率沉积的二氧化钛薄膜的结构、形态、光学和气体传感特性。研究表明,以 2 毫升/分钟的速率优化二氧化钛薄膜沉积,可显著增强甲醛检测能力,提高选择性,并在 20 ppm 浓度时实现 7.52 的快速响应。这项研究强调了优化沉积速率在提高二氧化钛薄膜的气体传感功效方面的关键作用,尤其是在环境条件下的甲醛检测方面。最佳沉积速率有助于提高传感器性能。XRD 和拉曼光谱的协同应用明确证实了二氧化钛锐钛矿相的存在,这在气体传感应用中至关重要。FESEM 提供了对表面形态的高分辨率洞察,揭示了一种球形结构。此外,还利用紫外可见光谱评估了薄膜的光带隙,其衰减与沉积速率相关。值得注意的是,2 毫升/分钟的沉积速率明显提高了二氧化钛薄膜的传感性能。这些见解对于为尖端应用开发具有成本效益的高性能气体传感器至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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