4.8 Article

Ascorbic acid-induced structural defect in photocatalytic graphitic carbon nitride to boost H2O2 fuel cell performance

期刊

JOURNAL OF POWER SOURCES
卷 532, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jpowsour.2022.231368

关键词

G-C3N4; Structural defect; Photocatalysis; H2O2 production; Fuel cell

资金

  1. China Postdoctoral Science Foundation [2021M693793, 2019T120251, 2018M630334]
  2. Natural Science Foundation of Heilongjiang Province [YQ2019E009]
  3. Heilongjiang Postdoctoral Young Talent Program [LBH-TZ05]
  4. Heilongjiang Postdoctoral Scientific Research Developmental Fund [LBHQ17034]
  5. University Nursing Program for Young Scholars with Creative Talents in Heilongjiang Province [UNPYSCT-2020143]
  6. Heilongjiang Postdoctoral General Fund [LBH-Z20123]

向作者/读者索取更多资源

In this study, porous g-C3N4 with structural defects of oxygen atom and cyano group (COCN) is applied in the H2O2 fuel cell, showing enhanced power density and solar-to-electricity conversion efficiency. Photocatalytically produced H2O2 can also be stored and used as fuel in an H-22 fuel cell.
In this study, porous g-C3N4 with structural defects of oxygen atom and cyano group (COCN) prepared by thermal polymerization of directly calcinating the mixture of urea and ascorbic acid, is firstly applied in the H2O2 fuel cell. By employing a nickel mesh coated with COCN as the photoanode and iron phthalocyanine (FeIIPc) mixed with g-C3N4 on carbon paper as the cathode, this COCN-based cell exhibits a maximum power density of 0.298 mW center dot cm(-2) in the water solution including 0.1 M HCl under AM 1.5G solar light at air atmosphere, which has an approximate 5.0 times enhancement compared with that of pristine g-C3N4-based one. The corresponding solar-to-electricity conversion efficiency (SECE) of above cell is estimated to be 0.248%. In addition, the photocatalytically produced H2O2 (chemical energy) is stored in water with the electrodes disconnected under light irradiation for 3 h, and then is directly used as the fuel in an H-22 fuel cell by connecting the electrodes in the dark, yielding a specific capacitance of 5900 mF center dot cm(-2). After 6 h of cell operation, the retention rate of specific capacitance is still as high as 76.9%. The primary results provide a facile strategy to introduce structural defects in g-C3N4 for boosting H2O2 fuel cell performance.

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