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以Zn/Al-LDH为前驱体快速合成用于染料敏化太阳能电池的六边形Zn(Al)O-MMO纳米棒

Rapid Synthesis of Hexagonal-Shaped Zn(Al)O-MMO Nanorods for Dye-Sensitized Solar Cell Using Zn/Al-LDH as Precursor.

作者信息

Salih Ethar Yahya, Ramizy Asmiet, Aldaghri Osamah, Sabri Mohd Faizul Mohd, Madkhali Nawal, Alinad Tarfah, Ibnaouf Khalid Hassan, Eisa Mohamed Hassan

机构信息

College of Medical Sciences Technologies, The University of Mashreq, Baghdad 10021, Iraq.

Physics Department, College of Science, University of Anbar, Anbar 00964, Iraq.

出版信息

Nanomaterials (Basel). 2022 Apr 27;12(9):1477. doi: 10.3390/nano12091477.

Abstract

This study reports a simple new technique for the preparation of novel hexagonal-shaped mixed metal oxides (MMO) nanorods using Zn/Al-layered double hydroxide (LDH) as a precursor for dye-sensitized solar cell (DSSC) application. The effect of the Zn to Al molar ratio demonstrated a sound correlation between the obtained nanorods’ diameter and the fabricated DSSCs efficiency. Additionally, the optical behavior of the fabricated MMO film as well as the absorption enhancement due to the utilized dye are also demonstrated; a cut-off phenomenon at around 376 nm corresponds to the attained hexagonal nanorods. The open-circuit voltage augmented noticeably from 0.6 to 0.64 V alongside an increase in the diameter of nanorods from 64 to 80 nm. The results indicated that an increment in the diameter of the nanorods is desirable due to the enhanced surface area through which a higher amount of dye N719 was loaded (0.35 mM/cm2). This, in turn, expedited the transport of electrons within the MMO matrix resulting in an advanced short-circuit current. Of the devices fabricated, ZA-8 exhibited the highest fill factor and efficiency of 0.37% and 0.69%, respectively, because of its boosted short-circuit current and open-circuit voltage.

摘要

本研究报告了一种简单的新技术,该技术使用锌/铝层状双氢氧化物(LDH)作为前驱体来制备新型六边形混合金属氧化物(MMO)纳米棒,用于染料敏化太阳能电池(DSSC)。锌与铝的摩尔比对所得纳米棒的直径与所制备的DSSC效率之间显示出良好的相关性。此外,还展示了所制备的MMO薄膜的光学行为以及由于使用的染料而导致的吸收增强;在376nm左右的截止现象对应于所获得的六边形纳米棒。随着纳米棒直径从64nm增加到80nm,开路电压从0.6V显著增加到0.64V。结果表明,纳米棒直径的增加是可取的,因为其表面积增加,从而可以负载更多量的染料N719(0.35 mM/cm²)。这反过来又加速了MMO基质内电子的传输,从而产生更高的短路电流。在所制备的器件中,ZA-8分别表现出最高的填充因子和效率,分别为0.37%和0.69%,这是因为其短路电流和开路电压得到了提高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5da7/9101668/a76ac9bba8f2/nanomaterials-12-01477-g001.jpg

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