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Integrated Photo-Electrocatalytic (PEC) Systems for Water Splitting to Hydrogen and Oxygen under Concentrated Sunlight: Effect of Internal Parameters on Performance

机译:集成光电催化(PEC)用于浓缩阳光下氢气和氧气的水分分裂:内部参数对性能的影响

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摘要

The development of stable integrated photo-electrocatalytic (PEC) systems for hydrogen production from water is poised to reduce global CO2 emission. While some PEC systems have reached efficiencies as high as 18%, most demonstrated limited stability, and a non-negligible fraction of these are based on either H-2 production or current measurements, without evidence of O-2 production shedding doubts on the overall requirement of a catalytic cycle. In this work, we focus on a system that works under concentrated sunlight composed of a triple junction, a 3 J InGaP/GaAs/Ge photovoltaic cell with its front side covered with a poly(methyl methacrylate) sheet and its backside protected by metallic Ni foil. The hydroxylated Ni metal, in the alkaline environment used, acts as the oxygen evolution catalyst, in addition to protection from corrosion. It does also act as a heat-dissipating material, which is crucial for cell stability under concentrated sunlight. The complete system is stable, producing stoichiometric amounts of H-2 and O-2, and the reaction is therefore catalytic. Under concentrated light, we have studied the effect of changing the area of the Ni foil (effectively the amount of oxygen evolution catalyst) while keeping the "light-receiving front-cell area" constant. This dimensionless ratio is found to determine the reaction rate, below a ratio (Ni area to cell area) of about 1. Meanwhile, above this number, the reaction rate showed marginal changes; it is desired to have this ratio as large as possible in order to decrease the current density and therefore increase the lifetime of the complete system. A compilation of the most stable and most active similar systems is also given and discussed, in particular, in view of the very small number of available work reporting both H-2 and O-2 measurements. The solar-to-hydrogen efficiencies in this work are found to be 14% at 1-15 suns and 12% at 39 suns.
机译:用于水的氢气生产稳定集成光电催化(PEC)系统的开发准备减少全球二氧化碳排放。虽然一些PEC系统已经达到高达18%,最重要的有限稳定性,但这些稳定性的不可忽略的部分基于H-2生产或电流测量,而无需o-2生产脱落的证据要求催化循环。在这项工作中,我们专注于在集中阳光下工作的系统,其由三交界处,3J Ingap / GaAs / Ge光伏电池组成,其前侧覆盖着由聚(甲基丙烯酸甲酯)片材覆盖物及其背面保护金属Ni挫败。除了保护免受腐蚀之外,羟基化的Ni金属在所使用的碱性环境中起作用作为氧进化催化剂。它还用作散热材料,这对于浓缩阳光下的细胞稳定性至关重要。完整的系统是稳定的,产生化学计量的H-2和O-2,因此反应是催化的。在浓缩光下,我们研究了改变Ni箔面积的效果(有效地氧气进化催化剂的量),同时保持“光接收前细胞面积”恒定。发现这种无量纲比例测定反应速率,低于约1的比率(Ni区域到细胞面积)。同时,在该数量上方,反应速率显示边际变化;期望使该比例尽可能大,以降低电流密度,从而增加完整系统的寿命。鉴于H-2和O-2测量的非常少量的可用工作,还特别讨论并讨论了最稳定和最活跃的类似系统的汇编。这项工作中的太阳能效率为1-15±2%,在39次太阳下为14%,12%。

著录项

  • 来源
    《Energy & fuels》 |2020年第10期|13179-13185|共7页
  • 作者单位

    King Abdullah Univ Sci & Technol KAUST SABIC Corp Res & Dev Ctr CRD Hydrogen Platform Thuwal 23955 Saudi Arabia;

    King Abdullah Univ Sci & Technol KAUST SABIC Corp Res & Dev Ctr CRD Hydrogen Platform Thuwal 23955 Saudi Arabia;

    King Abdullah Univ Sci & Technol KAUST SABIC Corp Res & Dev Ctr CRD Hydrogen Platform Thuwal 23955 Saudi Arabia;

    King Abdullah Univ Sci & Technol KAUST SABIC Corp Res & Dev Ctr CRD Hydrogen Platform Thuwal 23955 Saudi Arabia;

  • 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

  • 入库时间 2022-08-18 22:24:59

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