首页> 外文期刊>Energy & fuels >Hydroelectric Cell Based on a Cerium Oxide-Decorated Reduced Graphene Oxide (CeO_2-rG) Nanocomposite Generates Green Electricity by Room-Temperature Water Splitting
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Hydroelectric Cell Based on a Cerium Oxide-Decorated Reduced Graphene Oxide (CeO_2-rG) Nanocomposite Generates Green Electricity by Room-Temperature Water Splitting

机译:基于氧化铈装饰的石墨烯氧化物(CEO_2-RG)纳米复合材料的水力电池通过室温水分裂产生绿色电力

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摘要

Non-photocatalytic water splitting by oxygen-deficient, mesoporous metal oxide-engineering-based hydroelectric cell (HEC) as a path-breaking invention to generate electricity is a well-known phenomenon. To obtain more electricity from HEC, the metal oxide with higher oxygen deficiency is a better option; therefore, use of CeO2 would be a better choice in the present work. Oxygen-deficient mesoporous CeO2, CeO2-rG1, and CeO2-rG2 nanocomposites have been synthesized by the one-step wet precipitation method. Increase in oxygen vacancies in the presence of Ce3+ concentration by the intense F-2g peak in Raman spectra of CeO2-rGO nanocomposite is compared to CeO2. The strain developed in the CeO2 lattice because of defect creation has been verified by high-resolution transmission electron microscopy images and X-ray diffraction. Defect pair formation in nanocomposite emits visible emission were taken by photoluminescence spectroscopy. Addition of rGO in CeO2 improved the surface area from 60.57 to 74.49 m(2)/g, which is confirmed by Brunauer-Emmett-Teller measurements. In HEC, water molecules are chemidissociated on the oxygen-deficient mesoporous surface of the pellet followed by physidissociation of water molecules at mesopores. Current is produced by redox reaction of dissociated ions at the Zn anode and Ag cathode attached to the nanocomposite pellet. Nanocomposite CeO2-rG(2)-based HEC delivers a short circuit current of 21.3 mA and an open-cell voltage of 0.84 V by adding few drops of water. CeO2-rG(2)-based HEC of an area of 4.8 cm(2) delivers a maximum power of 17.66 mW which is 2.25 times higher than the reported power of 7.84 mW for Li-magnesium ferrite-based HEC. Addition of rGO in highly resistive CeO2 significantly enhanced oxygen vacancies and mesoporosity, which improved the output power of HEC.
机译:缺氧的非光催化水分,基于中孔金属氧化物 - 工程基水电电池(HEC)作为发电的路径破坏发明是一种众所周知的现象。为了获得更多来自HEC的电力,具有较高缺氧缺氧的金属氧化物是更好的选择;因此,使用CEO2将是本工作中的更好选择。通过一步湿沉淀法合成了缺氧缺氧介孔CeO2,CeO2-RG1和CeO2-RG2纳米复合材料。通过CeO2-Rgo纳米复合材料的拉曼光谱,CE3 +浓度存在于CE3 +浓度存在下的氧空位的增加与CeO2-Rgo纳米复合材料的CEO2。通过高分辨率透射电子显微镜图像和X射线衍射验证了CEO2格中开发的应变。通过光致发光光谱取出纳米复合材料中的缺陷对形成可见发射。 CEO2中的RGO添加了50.57至74.49米(2)/ g的表面积改善了,这是由Brunauer-Emmett-Teller测量确认的。在HEC中,水分子在颗粒的缺氧介孔表面上进行化学分配,然后在中孔的水分子的度量分子上。通过在Zn阳极和Ag连接到纳米复合颗粒上的Ag阴极的离解离子的氧化还原反应产生电流。基于纳米复合性CeO2-Rg(2)通过加入少量水,基本的HEC提供21.3 mA的短路电流和0.84V的开孔电压。 CEO2-RG(2)的基于4.8厘米(2)的HEC,最大功率为17.66 MW,比李镁铁氧体的HEC报告的7.84 MW的功率高2.25倍。在高电阻CEO2中添加RGO显着增强了氧气空缺和中间渗透性,改善了HEC的输出功率。

著录项

  • 来源
    《Energy & fuels》 |2020年第10期|13067-13078|共12页
  • 作者单位

    Aligarh Muslim Univ ZH Coll Engn & Technol Dept Appl Phys Aligarh 202002 Uttar Pradesh India;

    CSIR Natl Phys Lab New Delhi 110012 India;

    Aligarh Muslim Univ ZH Coll Engn & Technol Dept Appl Phys Aligarh 202002 Uttar Pradesh India;

    CSIR Natl Phys Lab New Delhi 110012 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
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