从 Delonix regia 花中提取天然光敏剂,用于未来 DSSC 应用中的光传感器

Niyamat I. Beedri , Habib M. Pathan , Sunita Salunke-Gawali
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引用次数: 0

摘要

本研究探讨了如何利用Delonix regia(DR)(Gulmohar花)作为天然光敏剂,通过染料敏化太阳能电池(DSSC)制造自供电光传感器。研究了各种光阳极,包括 ZnO、ZnO/TiO2 和 ZnO/TiO2/Nb2O5,以提高它们在基于 DR 的光传感器中的性能。这些光阳极是在 DR 光敏剂的感化下采用不同的沉积方法制造的,并通过 X 射线衍射分析、场发射扫描电子显微镜(FE-SEM)、紫外可见光、荧光光谱和傅立叶变换红外光谱(FTIR)分析对其进行了表征。吸收光谱结果表明,与其他配置相比,ZnO/TiO2/Nb2O5/DR 光阳极在可见光下对光敏剂的吸附能力更强。ZnO/TiO2/Nb2O5 的扫描电子显微镜(SEM)横截面图像证实了多层光阳极的形成。为了评估光传感行为,我们进行了时变实验,重点是太阳光谱范围内的灵敏度、光致发光率、特定检测率和量子效率。在这些器件中,ZnO/TiO2/Nb2O5 表现出最高的光致发光率(1.2 × 10 -3 A/W)和光检测率(26.78 × 104 Jones),表明 DR 感光光敏传感器有望取得进展。这项研究凸显了 DR 感光光阳极,尤其是 ZnO/TiO2/Nb2O5 在提高光传感设备性能方面的卓越表现。所研究的配置在检测光信号方面具有 723 毫秒的快速响应速度和 89.87% 的出色灵敏度。这些发现强调了 DR 光敏剂增强光传感活动的潜力,对光检测领域的各种应用具有重要意义。通过利用 DR 的独特性质,特别是将其掺入 ZnO/TiO2/Nb2O5 中,本研究强调了开发高效自供电光敏剂的广阔前景。从这项工作中获得的启示为进一步探索和优化有机光传感器铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Natural photosensitizer extraction from Delonix regia flowers for future photosensor for DSSCs applications

Natural photosensitizer extraction from Delonix regia flowers for future photosensor for DSSCs applications

This study explores the utilization of Delonix regia (DR) (Gulmohar flower) as a natural photosensitizer in the fabrication of self-powered photosensors via dye-sensitized solar cells (DSSCs). Various photoanodes, including ZnO, ZnO/TiO2, and ZnO/TiO2/Nb2O5, were investigated for their performance enhancement in DR-based photosensors. The photoanodes were fabricated using different deposition methods sensitized with DR photosensitizer and characterized through X-ray diffraction analysis, Field emission scanning electron microscopy (FE-SEM), UV–visible, Fluorescence spectroscopy, and Fourier transform infrared spectroscopy (FTIR) analysis. The absorbance spectrum results indicate improved photosensitizer adsorption in visible light for the ZnO/TiO2/Nb2O5/DR photoanode compared to other configurations. The scanning electron microscopy (SEM) cross-section image of ZnO/TiO2/Nb2O5 confirmed the formation of a multilayer photoanode. Chronoamperometry experiments were conducted to evaluate the photo sensing behavior, focusing on sensitivity, photoresponsivity, specific detectivity, and quantum efficiency within the solar spectrum range. Among the devices, ZnO/TiO2/Nb2O5 exhibited the highest photoresponsivity (1.2 × 10 −3 A/W) and photodetectivity (26.78 × 104 Jones), demonstrating promising advancements in DR-sensitized photosensors. This research highlights the exceptional performance of DR-sensitized photoanodes, particularly ZnO/TiO2/Nb2O5, in advancing the capabilities of photo-sensing devices. The investigated configuration exhibited a rapid response speed of 723 ms and a remarkable sensitivity of 89.87% in detecting photo signals. These findings emphasize the potential of DR photosensitizers to enhance photo-sensing activities, with significant implications for diverse applications in photodetection. By leveraging the unique properties of DR, particularly its incorporation into ZnO/TiO2/Nb2O5, this study underscores the promising prospects for developing efficient self-powered photosensors. The insights gleaned from this work pave the way for further exploration and optimization in organic photosensors.

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