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Nanohybrid of titania/carbon nanotubes - nanohorns: A promising photocatalyst for enhanced hydrogen production under solar irradiation

机译:二氧化钛/碳纳米管的纳米杂化物-纳米角:一种有前途的光催化剂,可在太阳辐射下提高产氢量

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摘要

Mixtures of straight and defect-free multiwalled carbon nanotubes (MWCNTs), single walled carbon nanohorns (SWCNHs), and multiwalled carbon nanohorns (MWCNHs) were prepared by the arc discharge method. Functionalized Carbon Nanotubes (FCNTs) composed of MWCNTs, MWCNH_s and SWCNHs were obtained using acid functionalization process. TiO_2/FCNTs (CTP) nanohybrid photocatalysts were obtained with different amounts of FCNTs (2-20 wt%), by wet impregnation method. The photocatalytic activity of both pristine TiO_2 as well as the nanohybrids were studied in aqueous glycerol solution under solar irradiation. Reaction parameters such as amount of catalyst and amount of FCNTs in nanohybrids were optimized to ensure high rates of H_2 production. With a relatively low amount of pristine TiO_2, a high rate of H_2 production of 2134 μmol h~(-1) g_(cat)~(-1) has been obtained and is likely due to several factors such as well dispersed catalyst, reduced particle-particle agglomeration, resulting in enhanced light absorption (less light shielding), improved separation of charge carriers and utilization for red-ox reactions. Even better results were obtained with the use of nanohybrid catalysts. The enhanced photo-catalytic activities of the nanohybrid catalysts are ascribed to the synergetic effects of FCNTs that minimize light reflection which promotes enhanced solar light sensitization, good dispersion of the catalysts in the reaction solution, and improved surface-interface reactions of photogenerated charge carriers. In the present study 10 wt% FCNTs in nanohybrid (CTP-10) exhibited superior photocatalytic activity for H_2 generation, nearly 3 times higher than that of pristine TiO_2 catalyst. The CTP-10 photocatalyst exhibited photo-stability under the experimental conditions studied. The nanohybrid photocatalysts were characterized in order to confirm the crystal structure, morphology, surface chemical composition and optical properties. The present work demonstrates the unique beneficial photocatalytic properties of carbon nanotubes and nanohorn mixtures in nanohybrid photocatalysts, for enhanced H_2 production.
机译:通过电弧放电法制备了直的且无缺陷的多壁碳纳米管(MWCNT),单壁碳纳米角(SWCNHs)和多壁碳纳米角(MWCNHs)的混合物。利用酸官能化工艺获得了由MWCNT,MWCNH_s和SWCNHs组成的功能化碳纳米管(FCNT)。通过湿法浸渍法获得了不同含量的FCNTs(2-20wt%)的TiO_2 / FCNTs(CTP)纳米杂化光催化剂。研究了原始的TiO_2和纳米杂化物在甘油水溶液中在太阳光照射下的光催化活性。优化了诸如纳米杂化物中催化剂的量和FCNT的量之类的反应参数,以确保高的H_2产生率。使用相对较低的原始TiO_2量,已获得了2134μmolh〜(-1)g_(cat)〜(-1)的高H_2生成率,这很可能是由于催化剂分散良好等多种因素导致的。颗粒-颗粒的团聚,导致增强的光吸收(较少的光屏蔽),改进的电荷载流子分离和用于氧化还原反应。使用纳米混合催化剂获得了更好的结果。纳米杂化催化剂的增强的光催化活性归因于FCNT的协同效应,该协同效应使光反射最小化,从而促进了日光敏化的增强,催化剂在反应溶液中的良好分散以及光生电荷载体的改善的表面界面反应。在本研究中,纳米杂化物(CTP-10)中10 wt%的FCNT对H_2的产生表现出优异的光催化活性,几乎是原始TiO_2催化剂的3倍。在研究的实验条件下,CTP-10光催化剂表现出光稳定性。对纳米杂化光催化剂进行表征,以确认其晶体结构,形态,表面化学组成和光学性质。本工作证明了纳米杂化光催化剂中碳纳米管和纳米角混合物独特的有益光催化性能,可提高H_2的产生。

著录项

  • 来源
    《International journal of hydrogen energy》 |2015年第4期|1665-1674|共10页
  • 作者单位

    Nanocatalysis and Solar Fuels Research Laboratory, Department of Materials Science & Nanotechnology, Yogi Vemana University, Kadapa 516 003, Andhra Pradesh, India,Department of Metallurgical and Materials Engineering, Indian Institute of Technology Madras, Chennai 600 036, Tamil Nadu, India;

    Nanocatalysis and Solar Fuels Research Laboratory, Department of Materials Science & Nanotechnology, Yogi Vemana University, Kadapa 516 003, Andhra Pradesh, India;

    Department of Metallurgical and Materials Engineering, Indian Institute of Technology Madras, Chennai 600 036, Tamil Nadu, India;

    Inorganic & Physical Chemistry Division, Indian Institute of Chemical Technology, Hyderabad 500 007, Telangana, India;

    Nanocatalysis and Solar Fuels Research Laboratory, Department of Materials Science & Nanotechnology, Yogi Vemana University, Kadapa 516 003, Andhra Pradesh, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photocatalysis; Photostability; Carbon nanohorns; Water splitting; Solar energy; Reaction kinetics;

    机译:光催化;光稳定性;碳纳米角;分水;太阳能;反应动力学;
  • 入库时间 2022-08-18 00:21:14

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