3D TiO2 modified with reduced graphene embed into polyvinyl alcohol: photoanode electrode for oxygen evolution reaction

Fatih Tezcan, Didem Demi̇r
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Abstract

The photocatalytic hydrogen production from water splitting using solar energy is one of the promising trend research topics within the scope of green energy production. A photoelectrochemical set up consists of photoelectrode materials that directly uses photon energy convers water to hydrogen and oxygen. The photoelectrodes are photoanode and photocathode materials n-type and p-type semiconductor, respectively. In this study, the 3D TiO2 photoanode surface was modified by coating it with reduced graphene (rG) added polyvinyl alcohol (PVA) gel. PVA synthetic polymer with thermal stability, mechanical stability and low cost was preferred to provide distribution of rG material on 3D TiO2 active surfaces. In this context, different amounts of rG (2.5, 5, 10 and 20%, based on polymer weight) impregnated with PVA gel coated on the 3D TiO2 semiconductor surface were investigated. The solar light absorption behaviour and molecular interactions of the different amounts of rG in PVA on 3D TiO2 semiconductor were monitored by UV-vis and Raman spectrometer. A photocatalytic performance of photoelectrodes were conducted by Electrochemical Impedance spectroscopy (EIS), linear sweep voltammetry (LSV) and chronoamperometric measurement under 100 mW cm-2 solar light. Raman spectrum showed dispersion of RG in PVA. EIS measurement showed that the polarization resistance (Rp) increased in 3D TiO2 with only PVA coating, while the addition of rG to PVA caused a decrease in Rp at the semiconductor/electrolyte interface under sunlight. Furthermore, LSV and chronoamperometric measurement concluded that the increased amount of rG added to PVA increased the photoresponse of 3D TiO2 up to the limit rG value.
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嵌入聚乙烯醇的还原石墨烯修饰三维 TiO2:用于氧进化反应的光阳极电极
利用太阳能进行光催化分水制氢是绿色能源生产领域前景广阔的研究课题之一。光电化学装置由光电极材料组成,可直接利用光子能量将水转化为氢气和氧气。光电极分别是 n 型和 p 型半导体的光阳极和光阴极材料。在本研究中,通过在三维 TiO2 光阳极表面涂覆添加了还原石墨烯(rG)的聚乙烯醇(PVA)凝胶,对其进行了改性。聚乙烯醇(PVA)合成聚合物具有热稳定性、机械稳定性和低成本等优点,可在三维 TiO2 活性表面分布还原石墨烯材料。在这种情况下,研究人员对三维 TiO2 半导体表面上浸渍有 PVA 凝胶的不同数量的 rG(2.5%、5%、10% 和 20%,基于聚合物重量)进行了研究。紫外-可见光谱仪和拉曼光谱仪监测了三维 TiO2 半导体上 PVA 中不同含量 rG 的太阳光吸收行为和分子相互作用。在 100 mW cm-2 太阳光下,通过电化学阻抗光谱法(EIS)、线性扫描伏安法(LSV)和计时电流法测量了光电极的光催化性能。拉曼光谱显示了 RG 在 PVA 中的分散性。EIS 测量显示,仅涂覆 PVA 的 3D TiO2 的极化电阻(Rp)增加了,而在 PVA 中添加 RG 会导致日光下半导体/电解质界面处的 Rp 下降。此外,LSV 和计时器测量得出的结论是,在 PVA 中添加更多的 rG 会增加三维 TiO2 的光响应,直至 rG 的极限值。
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