4.7 Article

Sodium doped flaky carbon nitride with nitrogen defects for enhanced photoreduction carbon dioxide activity

期刊

JOURNAL OF COLLOID AND INTERFACE SCIENCE
卷 603, 期 -, 页码 210-219

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2021.06.113

关键词

g-C3N4; N defects; Na doping; Flaky structure; CO2 photoreduction

资金

  1. Key Project of Jiangsu Province Programs for Research and Development [BE2019115]
  2. Jiangsu Province Scientific and Technological Achievements into a Special Fund Project [BA2017095]
  3. Fundamental Research Funds for the Central Universities [30919011220]
  4. ChangZhou Science and Technology Support Program [CE20195022]
  5. Advanced Catalysis and Green manufacturing Collaborative Innovation Center, Changzhou University

向作者/读者索取更多资源

Flaky carbon nitride doped with sodium and nitrogen defects shows enhanced photocatalytic performance for CO2 reduction, providing valuable insights for developing modified materials for CO2 mitigation.
Sodium doped flaky carbon nitride (g-C3N4) with nitrogen defects (bmw-DCN-x) were synthesized via two steps method to enhance photocatalytic reduction of carbon dioxide (CO2). After ball milling and calcination, dicyandiamide was evenly dispersed on the sodium chloride (NaCl) template to form a flaky structure. The NaCl not only provided part of sodium (Na) source for Na doped g-C3N4, but also introduced a large number of nitrogen (N) defects. Meanwhile, sodium hydroxide (NaOH) significantly enhanced Na doping. The bmw-DCN-30, a proportion of modified g-C3N4, showed heightened photoreduction CO2 performance, with satisfactory carbon monoxide (CO) and methane (CH4) productivity at a rate of 30.6 mu mol.g(1)h(1) and 5.4 mu mol.g(1)h(1) respectively. This productivity was 15 and 11 times as much as that of bulky g-C3N4 (BCN). The related characterizations confirmed that N defects produced more reactive sites and enhanced the adsorption capacity of carbon nitride to CO2. The accompanying Na doping and flaky structure characteristics improved the optical absorption ability and the effective separation of photogenerated carriers. Accordingly, this work provides further insights into constructing modified materials based on carbon nitride for CO2 reduction. (C) 2021 Published by Elsevier Inc.

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