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Photodegradation of organic pollutants in water and green hydrogen production via methanol photoreforming of doped titanium oxide nanoparticles

机译:掺杂二氧化钛纳米粒子的甲醇光重整对水和绿色氢生产中的有机污染物进行光降解

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摘要

Novel nanomaterials based on doped TiO_2 nanoparticles with different morphological, textural and band-gap properties have been synthesized using scalable methods. The influence of synthetic parameters such as titanium source (titanium(Ⅳ) isopropoxide and titanium(Ⅳ) butoxide), doping quantity (0%, 2% or 5% Zn), acidic solution for the hydrolysis reaction (ascorbic acid, nitric acid) and calcination temperatures (500 ℃ and 600 ℃) was simultaneously investigated. The obtained nanomaterials were characterized by different methods and photocat-alytic tests of methylene blue (MB) degradation under UV-light were conducted to determine their activity. The results revealed that the synthesized nanomaterials are porous aggregates with very high crystallinity and are mainly composed of the anatase phase; although their physical properties vary depending on the different synthetic parameters employed. These changes are able to modify the apparent rate constant of the degradation of MB up to one order of magnitude, indicating, substantial changes in their photoactivity. Hybrid materials TiO_2-Pd nanoparticles have also been prepared, characterized and tested for hydrogen production using photocatalytic methanol reforming where supported palladium nanoparticles acted as co-catalyst. Furthermore, the hybrid materials TiO_2-Pd nanoparticles were studied in photocatalytic tests of methylene blue degradation under visible LED-light. The results obtained in the production of hydrogen from the photocatalytic reforming of methanol by hybrid materials suggest that the reported hybrid systems could be suitable photocatalysts for future sustainable hydrogen production upon tuning of the morphological, textural and band gap energy properties to allow processes to be carried out under visible light.
机译:使用可扩展方法合成了基于具有不同形态,结构和带隙性质的掺杂TiO_2纳米粒子的新型纳米材料。合成参数的影响,例如钛源(异丙醇钛(Ⅳ)和丁醇钛(Ⅳ)),掺杂量(Zn的0%,2%或5%),水解反应的酸性溶液(抗坏血酸,硝酸)同时研究了煅烧温度(500℃和600℃)。用不同的方法对得到的纳米材料进行了表征,并对亚甲基蓝(MB)在紫外光下的光催化性能进行了测试,以确定其活性。结果表明,合成的纳米材料是具有很高结晶度的多孔聚集体,主要由锐钛矿相组成。尽管它们的物理性质取决于所采用的不同合成参数而变化。这些变化能够将MB降解的表观速率常数修改到一个数量级,表明其光活性发生了实质性变化。还已经使用光催化甲醇重整制备了杂化材料TiO_2-Pd纳米颗粒,并对其进行了制氢测试,并对其进行了测试,其中负载型钯纳米颗粒充当助催化剂。此外,在可见光的作用下,在亚甲基蓝降解的光催化试验中研究了杂化材料TiO_2-Pd纳米粒子。通过杂化材料对甲醇进行光催化重整而制氢的结果表明,所报道的杂化系统可能是适合的光催化剂,可通过调节形态,结构和带隙能性质来实现未来的可持续制氢,以进行工艺在可见光下。

著录项

  • 来源
    《The Science of the Total Environment》 |2016年第1期|921-932|共12页
  • 作者单位

    Departamento de Biologia y Geologia, Fisica y Quimicn Inorganica, E.S.C.E.T., Universidad Rey Juan Carlos, C/Tulipan s, 28933 Mostoles, Madrid, Spain;

    Centre de Recherche Scientifique et Technique en Analyses Physico-Chimiques, BP 384, Siege ex-Pasna Zone Industrielle, Bou-Ismail CP 42004, Tipaza, Algerie;

    Wolfson Nanascience Laboratory and Cardiff Catalysis Institute, School of Chemistry, Cardiff University, Main Building, Cardiff CF10 3AT, UK;

    Centre de Recherche Scientifique et Technique en Analyses Physico-Chimiques, BP 384, Siege ex-Pasna Zone Industrielle, Bou-Ismail CP 42004, Tipaza, Algerie;

    Departamento de Biologia y Geologia, Fisica y Quimicn Inorganica, E.S.C.E.T., Universidad Rey Juan Carlos, C/Tulipan s, 28933 Mostoles, Madrid, Spain;

    Centre de Recherche Scientifique et Technique en Analyses Physico-Chimiques, BP 384, Siege ex-Pasna Zone Industrielle, Bou-Ismail CP 42004, Tipaza, Algerie;

    Departamento de Biologia y Geologia, Fisica y Quimicn Inorganica, E.S.C.E.T., Universidad Rey Juan Carlos, C/Tulipan s, 28933 Mostoles, Madrid, Spain;

    Departamento de Biologia y Geologia, Fisica y Quimicn Inorganica, E.S.C.E.T., Universidad Rey Juan Carlos, C/Tulipan s, 28933 Mostoles, Madrid, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanomaterials; Titania nanoparticles; Pd-nanoparticles; Water remediation; Hydrogen production; Photocatalysis;

    机译:纳米材料二氧化钛纳米粒子;钯纳米粒子;水修复;制氢;光催化;

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