4.6 Review

Recent Strategies for Hydrogen Peroxide Production by Metal-Free Carbon Nitride Photocatalysts

期刊

CATALYSTS
卷 9, 期 12, 页码 -

出版社

MDPI
DOI: 10.3390/catal9120990

关键词

hydrogen peroxide; photocatalysis; carbon nitride; metal-free; oxygen reduction

资金

  1. European Regional Development Fund (ERDF) through NORTE 2020 -Programa Operacional Regional do NORTE [NORTE-01-0145-FEDER-031049, PTDC/EAM-AMB/31049/2017]
  2. national funds (PIDDAC) through FCT-Fundacao para a Ciencia e a Tecnologia
  3. ERDF through COMPETE2020 -Programa Operacional Competitividade e Internacionalizacao (POCI) [POCI-01-0145-FEDER-030674, POCI-01-0145-FEDER-031398, POCI-01-0145-FEDER-029600]
  4. FCT
  5. NORTE 2020 under the Portugal 2020 Partnership Agreement through ERDF [NORTE-01-0145-FEDER-000006]
  6. FCT/MCTES (PIDDAC) [UID/EQU/50020/2019]
  7. FCT Investigator Programme [IF/00514/2014]
  8. European Social Fund (ESF)
  9. Human Potential Operational Programme
  10. Fundação para a Ciência e a Tecnologia [PTDC/EAM-AMB/31049/2017] Funding Source: FCT

向作者/读者索取更多资源

Hydrogen peroxide (H2O2) is a chemical which has gained wide importance in several industrial and research fields. Its mass production is mostly performed by the anthraquinone (AQ) oxidation reaction, leading to high energy consumption and significant generation of wastes. Other methods of synthesis found in the literature include the direct synthesis from oxygen and hydrogen. However, this H2O2 production process is prone to explosion hazard or undesirable by-product generation. With the growing demand of H2O2, the development of cleaner and economically viable processes has been under intense investigation. Heterogeneous photocatalysis for H2O2 production has appeared as a promising alternative since it requires only an optical semiconductor, water, oxygen, and ideally solar light irradiation. Moreover, employing a metal-free semiconductor minimizes possible toxicity consequences and reinforces the sustainability of the process. The most studied metal-free catalyst employed for H2O2 production is polymeric carbon nitride (CN). Several chemical and physical modifications over CN have been investigated together with the assessment of different sacrificial agents and light sources. This review shows the recent developments on CN materials design for enhancing the synthesis of H2O2, along with the proposed mechanisms of H2O2 production. Finally, the direct in situ generation of H2O2, when dealing with the photocatalytic synthesis of added-value organic compounds and water treatment, is discussed.

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