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Catalytic thermal decomposition of sulphuric acid in sulphur-iodine cycle for hydrogen production

机译:硫碘循环中硫酸的催化热分解制氢

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Zero emission energy production systems are the main goal of engineering and research efforts. The use of hydrogen is the most suitable option, and hydrogen production by water using renewable energy power supply could be the final solution. In this study the sulphur-iodine cycle for hydrogen production by a water-splitting reaction has been investigated and new experimental results on thermal dissociation of sulphuric acid has been discussed. The decomposition of H_2SO_4 to produce SO_2 is the reaction with the highest energy demand in the S-I cycle and it shows a large kinetic barrier. In this work, two catalysts, a Pd-Ag alloy and ferric oxide (Fe_2O_3), have been tested to evaluate their effect on dissociation efficiency at various temperatures. For both catalysts a large onset temperature decrease for the activation of this reaction has been achieved. In the case of the intermetallic alloy Ag-Pd it may be suggested that the metal oxide PdO could be the active catalytic species.
机译:零排放能源生产系统是工程和研究工作的主要目标。氢的使用是最合适的选择,使用可再生能源供电的水生产氢可能是最终的解决方案。在这项研究中,研究了通过水分解反应生产氢的硫碘循环,并讨论了硫酸热分解的新实验结果。 H_2SO_4分解生成SO_2是S-1循环中能量需求最高的反应,并且显示出较大的动力学势垒。在这项工作中,已经测试了两种催化剂,Pd-Ag合金和三氧化二铁(Fe_2O_3),以评估它们在不同温度下对离解效率的影响。对于两种催化剂,已经实现了用于该反应的活化的大的起始温度降低。在金属间合金Ag-Pd的情况下,可能建议金属氧化物PdO可能是活性催化物质。

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