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Photodriven Disproportionation of Nitrogen and Its Change to Reductive Nitrogen Photofixation.

Jianhua YangHaoyuan BaiYanzhen GuoHan ZhangRuibin JiangBaocheng YangJianfang WangJimmy C Yu
Published in: Angewandte Chemie (International ed. in English) (2020)
Nitrogen fixation is an essential process for sustaining life. Tremendous efforts have been made on the photodriven fixation of nitrogen into ammonia. However, the disproportionation of dinitrogen to ammonia and nitrate under ambient conditions has remained a grand challenge. In this work, the photodriven disproportionation of nitrogen is realized in water under visible light and ambient conditions using Fe-doped TiO2 microspheres. The oxygen vacancies associated with the Fe dopants activate chemisorbed N2 molecules, which can then be fixed into NH3 with H2 O2 as the oxidation product. The generated H2 O2 thereafter oxidizes NH3 into nitrate. This disproportionation reaction can be turned to the reductive one by loading plasmonic Au nanoparticles in the doped TiO2 microspheres. The generated H2 O2 can be effectively decomposed by the Au nanoparticles, resulting in the transformation of the disproportionation reaction to the completely reductive nitrogen photofixation.
Keyphrases
  • visible light
  • quantum dots
  • air pollution
  • room temperature
  • particulate matter
  • nitric oxide
  • drinking water
  • mass spectrometry
  • metal organic framework
  • ionic liquid
  • reduced graphene oxide
  • simultaneous determination