4.6 Article

Bandgap Engineering and Mechanism Study of Nonmetal and Metal Ion Codoped Carbon Nitride: C plus Fe as an Example

期刊

CHEMISTRY-A EUROPEAN JOURNAL
卷 20, 期 31, 页码 9805-9812

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/chem.201400060

关键词

band structure; carbon nitride; reaction mechanisms; codoping; photocatalysis

资金

  1. Ministry of Science and Technology of China [2011CB933700]
  2. National Natural Science Foundation of China [21225730, 91326202, 21207136, 21272236]
  3. Hefei Center for Physical Science and Technology [2012FXZY005]
  4. Priority Academic Program Development of Jiangsu Higher Education Institutions
  5. Collaborative Innovation Center of Radiation Medicine of Jiangsu Higher Education Institutions

向作者/读者索取更多资源

Bandgap narrowing and a more positive valence band (VB) potential are generally considered to be effective methods for improving visible-light-driven photocatalysts because of the significant enhancement of visible-light absorption and oxidation ability. Herein, an approach is reported for the synthesis of a novel visible-light-driven high performance polymer photocatalyst based on band structure control and nonmetal and metal ion codoping, that is, C and Fe-codoped as a model, by a simple thermal conversion method. The results indicate that compared to pristine graphitic carbon nitride (g-C3N4), C+Fe-codoped g-C3N4 shows a narrower bandgap and remarkable positively shifted VB; as a result the light-absorption range was expanded and the oxidation capability was increased. Experimental results show that the catalytic efficiency of C+Fe-codoped g-C3N4 for photodegradation of rhodamine B (RhB) increased 14 times, compared with pristine g-C3N4 under visible-light absorption at lambda>420 nm. The synergistic enhancement in C+Fe-codoped g-C3N4 photocatalyst could be attributed to the followingFeatures: 1) C+Fe-codoping of g-C3N4 tuned the bandgap and improved visible-light absorption; 2) the porous lamellar structure and decreased particle size could provide a high surface area and greatly improve photogenerated charge separation and electron transfer; and 3) both increased electrical conductivity and a more positive VB ensured the superior electron-transport property and high oxidation capability. The results imply that a high-performance photocatalyst can be obtained by combining bandgap control and doping modification; this may provide a basic concept for the rational design of high performance polymer photocatalysts with reasonable electronic structures for unique photochemical reaction.

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