Performance test of Zn-astaxanthin complex-sensitized solar cell: effect of light intensity on open-circuit voltage and short-circuit current values.

IF 1.3 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY Turkish Journal of Chemistry Pub Date : 2024-01-05 eCollection Date: 2024-01-01 DOI:10.55730/1300-0527.3653
Septiani Septiani, Winda Rahmalia, Thamrin Usman
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Abstract

The sensitizer is one of the most essential dye-sensitized solar cell (DSSC) components. In the present research, a Zn-astaxanthin complex was investigated as a sensitizer, compared to pure astaxanthin. The complex with a 1:1 mole ratio between astaxanthin and Zn2+ was synthesized in a reflux reactor at 37-60 °C. The product was analyzed using Proton Nuclear Resonance (1H-NMR), which indicates the presence of chelate formation between Zn2+ with two atoms of oxygen on the terminal cyclohexane ring of astaxanthin. The interaction of sensitizers (astaxanthin and Zn-astaxanthin) on the photoelectrode surface in this study was analyzed using a Fourier Transform Infra-Red (FTIR) and Ultraviolet-Visible Diffuse Reflectance Spectroscopy (UV-Vis DRS). The FTIR spectra of photoelectrode immersed in Zn-astaxanthin show peaks of C=O stretching and vibration -OH group at 1730 and 1273 cm-1, respectively, and H-C-H stretching vibration with high intensity in 2939, 2923, and 2853 cm-1. The UV-Vis DRS analysis shows the band gap of photoelectrode (PE), photoelectrode immersed in astaxanthin (PE/astaxanthin), and Zn-astaxanthin (PE/Zn-astaxanthin) are 3.19, 1.65, and 1.59 eV, respectively. Under illumination intensity of 300 W/m2, the maximum energy conversion efficiency of DSSC with Zn-astaxanthin as sensitizer is (0.03 ± 0.0022)%, higher than DSSC with astaxanthin as sensitizer ((0.12 ± 0.0052)%). Up to 70 h of illumination, DSSC with Zn-astaxanthin as a sensitizer also has better stability than astaxanthin-based DSSC.

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Zn-astaxanthin 复合物敏化太阳能电池的性能测试:光照强度对开路电压和短路电流值的影响。
敏化剂是染料敏化太阳能电池(DSSC)最基本的组成部分之一。与纯虾青素相比,本研究将 Zn- 虾青素复合物作为敏化剂进行了研究。虾青素和 Zn2+ 的摩尔比为 1:1,在 37-60 °C 的回流反应器中合成。利用质子核共振(1H-NMR)对产物进行了分析,结果表明 Zn2+ 与虾青素末端环己烷环上的两个氧原子形成了螯合物。本研究使用傅立叶变换红外光谱(FTIR)和紫外-可见漫反射光谱(UV-Vis DRS)分析了敏化剂(虾青素和 Zn-虾青素)与光电极表面的相互作用。浸泡在 Zn-astaxanthin 中的光电极的傅立叶变换红外光谱显示,在 1730 和 1273 cm-1 处分别有 C=O 伸展振动和 -OH 基团振动峰,在 2939、2923 和 2853 cm-1 处有强度较高的 H-C-H 伸展振动峰。紫外-可见DRS分析表明,光电极(PE)、浸入虾青素的光电极(PE/虾青素)和Zn-虾青素(PE/Zn-虾青素)的带隙分别为3.19、1.65和1.59 eV。在光照强度为 300 W/m2 的条件下,以 Zn-astaxanthin 为敏化剂的 DSSC 的最大能量转换效率为 (0.03 ± 0.0022)%,高于以虾青素为敏化剂的 DSSC((0.12 ± 0.0052)%)。与虾青素基 DSSC 相比,以 Zn-astaxanthin 为敏化剂的 DSSC 在长达 70 小时的光照下也具有更好的稳定性。
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来源期刊
Turkish Journal of Chemistry
Turkish Journal of Chemistry 化学-工程:化工
CiteScore
2.40
自引率
7.10%
发文量
87
审稿时长
3 months
期刊介绍: The Turkish Journal of Chemistry is a bimonthly multidisciplinary journal published by the Scientific and Technological Research Council of Turkey (TÜBİTAK). The journal is dedicated to dissemination of knowledge in all disciplines of chemistry (organic, inorganic, physical, polymeric, technical, theoretical and analytical chemistry) as well as research at the interface with other sciences especially in chemical engineering where molecular aspects are key to the findings. The journal accepts English-language original manuscripts and contribution is open to researchers of all nationalities. The journal publishes refereed original papers, reviews, letters to editor and issues devoted to special fields. All manuscripts are peer-reviewed and electronic processing ensures accurate reproduction of text and data, plus publication times as short as possible.
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