4.7 Article

Electrospray Deposition of Catalyst Layers with Ultralow Pt Loading for Cost-Effective H2 Production by SO2 Electrolysis

期刊

ACS APPLIED ENERGY MATERIALS
卷 5, 期 2, 页码 2138-2149

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsaem.1c03672

关键词

green H-2 production; Westinghouse cycle; low Pt loading; electrospray deposition

资金

  1. Junta de Comunidades de Castilla-La Mancha
  2. FEDER e EU Program [SBPLY/17/180501/000330]
  3. University of Castilla-La Mancha [2018/12504]
  4. Tunisian Ministry of Higher Education and Scientific research

向作者/读者索取更多资源

This paper investigates the effect of electrospray and air gun deposition techniques and low Pt loadings on catalyst durability and activity in the hybrid sulfur thermochemical cycle. The study finds that electrosprayed electrodes have significant impact on catalyst durability with considerable electrochemical active surface area, while electrodes with low platinum loadings exhibit elevated activity and stability under sulfuric acid conditions.
The hybrid sulfur (HyS) thermochemical cycle has been considered as a promising approach for the massive production of clean hydrogen without CO2 emissions. The key to advance this technology and to enhance the cycle efficiency is to improve the electrocatalytic oxidation of SO2, which is the pivotal reaction within this process. Hence, this paper investigates, for the first time, the effect of electrospray and air gun deposition techniques and the influence of very low Pt loadings (<0.3 mg Pt/cm(2)) on catalyst durability and activity. The variation of electrochemical active surface area (ECSA) with the number of cycles demonstrates the significant impact of the electrode fabrication method and catalyst loading on the catalyst durability with considerable ECSA values for electrosprayed electrodes. Electrodes prepared with low platinum loadings (0.05 mg Pt/cm(2)) exhibit elevated catalyst activity and stability under sulfuric acid conditions and maintain a crucial current density after 5 h of electrolysis. This work extends the understanding of the SO2-depolarized electrolysis (SDE) process and gives suggestions for further improvements in the catalyst layer fabrication, which provides potential support for the large-scale research and application of the HyS cycle.

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