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Green and low-cost synthesis of PANI-TiO2 nanocomposite mesoporous films for photoelectrochemical water splitting

机译:用于光电化学水分解的绿色低成本PANI-TiO2纳米复合介孔膜的合成

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摘要

Among conductive polymers, polyaniline (PANI) has been widely used to improve electronic conductivity, solar energy transfer and photocatalytic activity of TiO2, due to its ease preparation and excellent environmental stability. In this study, a green and low-cost synthesis procedure was developed for the preparation of PANI-TiO2 nanocomposite films. Anon-toxic and low-cost polymerization route, starting from aniline dimer and polystyrene sulphonate as emulsioning/doping agent in water, was employed to synthesize the conductive form of PANI (emeraldine salt, ES). Anatase TiO2 nanocrystalline mesoporous films were prepared by a novel and green sol-gel spin coating method, which employs titanium tetraisopropoxide, acetic acid and a nonionic surfactant (Tween 20) in excess of water, avoiding the use of flammable solvents. Uniform PANI-TiO2 composite films, containing PANI in either ES or pernigraniline base (PB) forms, i.e. PANI/TiO2 and PANIox/TiO2, respectively, were then prepared by a simple impregnation method. The films were characterized by means of XRD, ATR, FESEM and TEM techniques and their photocatalytic activity was assessed using them as photoelectrochemical water splitting photoanodes. Both PANI/TiO2 and PANIox/TiO2 showed an enhanced water oxidation efficiency under AM 1.5G simulated sunlight irradiation, reaching about 2 and 1.6 fold higher photocurrent densities, respectively, than a pure TiO2 nanoparticles film. They also demonstrated good stability after several hours of operation. UV-Vis spectrophotometry and IPCE analysis reveal the main role of PANI, in the system PANI/TiO2 for the PEC water oxidation, is as sensitizer of TiO2 in the UV light by significantly increasing charges separation, electrons transport and collected photoelectrons, indirectly contributing to the generation of O-2. Indeed, PANI-ES photogenerated e(-) are transferred to the TiO2 conduction band while its h(+) can react with OH- to produce OH radicals that generate H2O2, which can subsequently be photooxidized on the TiO2 NPs surface generating more O-2 than such produced by the direct water oxidation on the TiO2 holes.
机译:在导电聚合物中,聚苯胺(PANI)易制备且具有出色的环境稳定性,已被广泛用于提高TiO2的电子导电性,太阳能转移和光催化活性。在这项研究中,开发了一种绿色且低成本的合成方法来制备PANI-TiO2纳米复合膜。以苯胺二聚体和聚苯乙烯磺酸盐为乳化剂/水中掺杂剂的无毒,低成本聚合路线,合成了PANI(翡翠盐,ES)的导电形式。采用新颖的绿色溶胶-凝胶旋涂法制备了锐钛矿型TiO2纳米晶介孔膜,该方法采用了四异丙醇钛,乙酸和非离子型表面活性剂(吐温20),水过量,避免使用易燃溶剂。然后通过简单的浸渍方法制备均一的PANI-TiO2复合膜,该膜包含ES或邻苯二甲胺基(PB)形式的PANI,即分别为PANI / TiO2和PANIox / TiO2。利用XRD,ATR,FESEM和TEM技术对薄膜进行了表征,并以其作为光电化学水分解光阳极来评价其光催化活性。在AM 1.5G模拟日光照射下,PANI / TiO2和PANIox / TiO2均显示出增强的水氧化效率,分别比纯TiO2纳米颗粒膜高出约2倍和1.6倍的光电流密度。在运行几个小时后,它们还显示出良好的稳定性。 UV-Vis分光光度法和IPCE分析表明,在PANI / TiO2用于PEC水氧化的系统中,PANI的主要作用是通过显着增加电荷分离,电子传输和收集的光电子来作为UV2中TiO2的敏化剂,间接地促进了O-2的生成实际上,PANI-ES光生成的e(-)转移到TiO2导带,而其h(+)可以与OH-反应生成OH自由基,生成H2O2,随后可以在TiO2 NPs表面进行光氧化,从而生成更多O-与通过在TiO 2孔上直接水氧化所产生的这种情况相比,图2所示的方法更是如此。

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