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首页> 外文期刊>Separation and Purification Technology >Effect of Ti3+ on enhancing photocatalytic and photoelectrochemical properties of TiO2 nanorods/nanosheets photoelectrode
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Effect of Ti3+ on enhancing photocatalytic and photoelectrochemical properties of TiO2 nanorods/nanosheets photoelectrode

机译:Ti3 +对增强TiO2纳米棒/纳芯光电电极的光催化和光电化学性能的影响

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摘要

In the study, visible-light active Ti3+ doped TiO2 nanorods/nanosheets (Ti3+/TiO2 NRs/NSs) photoelectrode was successfully fabricated by hydrothermal reaction, followed by sodium borohydride reduction treatment. Moreover, physicochemical properties of the resulting samples were studied by series" of techniques. Also, photocatalytic (PC) activity of Ti3+/TiO2 NRs/NSs photoelectrode was measured by degradation of methylene blue (MB). Results suggested that Ti3+ and oxygen vacancies (Ov) were simultaneously formed and induce the formation of impurity energy level in the TiO2 NRs/NSs band gap by solution reduction treatment, which exerted a huge influence on the photocatalytic and photoelectrochemical properties of Ti3+7/TiO2 NRs/NSs photoelectrode in the mean time. Furthermore, Ti3+/TiO2 NRs/NSs photoelectrode exhibited higher PC activity (89.61%) than that of pristine TiO2 NRs/NSs (73.56%) within 150 min visible light illumination owing to the enhancement of visible light harvesting and separation efficiency of photoproduced charges. Moreover, the possible enhanced PC mechanism of Ti3+/TiO2 NRs/NSs was proposed and confirmed. Furthermore, Ti3+/TiO2 NRs/NSs photo electrode displayed good stability and reusability.
机译:在该研究中,通过水热反应成功制造了可见光活性Ti3 +掺杂TiO2纳米棒/纳米片(Ti3 + / TiO 2 NRS / NSS)光电极,然后通过水热反应制造,然后是硼氢化钠还原处理。此外,通过串联“技术”研究了所得样品的物理化学性质。通过降解亚甲基蓝(MB),测量Ti3 + / TiO2 NRS / NSS光电电极的光催化(PC)活性。结果表明Ti3 +和氧气空缺(通过溶液还原处理同时形成并诱导TiO2 NRS / NSS带隙中的杂质能量水平的形成,这对Ti3 + 7 / TiO2 NRS / NSS光电极的光催化和光电化学性能施加了巨大影响时间。此外,由于增强了可见光收获和光Ploduced的分离效率,Ti3 + / TiO2 NRS / NSS光电极比在150分钟内的初始透光照射中呈现比原始TiO2 NRS / NSS(73.56%)更高的PC活性(89.61%)提出并确认了Ti3 + / TiO2 NRS / NSS的可能增强的PC机制。此外,Ti3 + / TiO2 NRS / NSS光电显示出良好的稳定y和可重用性。

著录项

  • 来源
    《Separation and Purification Technology 》 |2018年第2018期| 共11页
  • 作者单位

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Lanzhou Univ Coll Earth &

    Environm Sci Key Lab Western Chinas Environm Syst Minist Educ Lanzhou 730000 Gansu Peoples R China;

    Chengdu Univ Informat Technol Coll Resources &

    Environm Chengdu 610225 Sichuan Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分离过程 ; 气化工艺 ;
  • 关键词

    Ti3+ self-doped TiO2 nanorods/nanosheets; Photoelectrode; Sodium borohydride; Photocatalysis; Photoelectrochemistty;

    机译:Ti3 +自掺杂TiO2纳米棒/纳米液;光电子;硼氢化钠;光催化;光电化;

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