Qureshi Saima, Gregory Duncan H, Tahir Asif Ali, Ahmed Safeer
Department of Chemistry, Quaid-i-Azam University 45320 Islamabad Pakistan
West CHEM, School of Chemistry, University of Glasgow Glasgow G12 8QQ UK.
RSC Adv. 2023 Nov 29;13(49):34798-34807. doi: 10.1039/d3ra05348b. eCollection 2023 Nov 22.
Herein, a ZrO added α-FeO photoanode that can split water at low applied potential is reported. First, the pristine hematite α-FeO photoanode was synthesized using an aerosol-assisted chemical vapour deposition (AACVD) method followed by modification with various amounts of ZrO (2 to 40%) in the form of thin films on conducting glass substrate. The XRD, Raman spectroscopy and scanning electron microscopy (SEM) analyses confirmed the presence of the monoclinic phase of ZrO in the composites with multifaceted particles of compact morphology. The optical analysis showed an increase in the absorbance and variation in band gap of the composites ascribed to the heterogeneity of the material. The photoelectrochemical studies gave a photocurrent density of 1.23 mA cm at 1.23 V RHE for the pristine hematite and remarkably higher value of 3.06 mA cm for the optimized amount of ZrO in the modified α-FeO photoanode. To the best of our knowledge, this is the highest photocurrent reported for a ZrO containing photoanode. The optimized composite electrode produced nine times more oxygen than that produced by pristine hematite.
本文报道了一种添加ZrO的α-Fe₂O₃光阳极,其能够在低外加电势下分解水。首先,使用气溶胶辅助化学气相沉积(AACVD)法合成原始赤铁矿α-Fe₂O₃光阳极,随后在导电玻璃基板上以薄膜形式用不同量(2%至40%)的ZrO进行改性。X射线衍射(XRD)、拉曼光谱和扫描电子显微镜(SEM)分析证实,在具有致密形态多面体颗粒的复合材料中存在单斜相ZrO。光学分析表明,由于材料的不均匀性,复合材料的吸光度增加且带隙发生变化。光电化学研究表明,原始赤铁矿在1.23 VRHE下的光电流密度为1.23 mA/cm²,而在改性α-Fe₂O₃光阳极中,对于优化量的ZrO,光电流密度显著更高,达到3.06 mA/cm²。据我们所知,这是含ZrO光阳极报道的最高光电流。优化后的复合电极产生的氧气比原始赤铁矿产生的氧气多九倍。