Nitrogen-Defective Polymeric Carbon Nitride Nanolayer Enabled Efficient Electrocatalytic Nitrogen Reduction with High Faradaic Efficiency
Author(s) -
Guiming Peng,
Jiawen Wu,
Mingzhan Wang,
Jens Niklas,
Hua Zhou,
Chong Liu
Publication year - 2020
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.0c00698
Subject(s) - faraday efficiency , nitrogen , materials science , nitride , carbon fibers , carbon nitride , electrocatalyst , nanotechnology , reduction (mathematics) , chemical engineering , inorganic chemistry , chemistry , electrochemistry , electrode , catalysis , layer (electronics) , photocatalysis , organic chemistry , composite material , composite number , engineering , biochemistry , geometry , mathematics
Identifying highly selective catalysts and accurately measuring NH 3 yield without false-positives from contaminations remain two challenges in electrochemical nitrogen reduction reaction (NRR). Here, we report N-defective carbon nitride grown on carbon paper (CN/C) as a highly selective electrocatalyst. The NH 3 yield was determined reliably by the slope of m NH3 -time plot rather than averaging the accumulated amount over time. Results showed the as-synthesized CN/C 600 (synthesized at 600 °C) with a higher density of C=N-C N 2C vacancies achieved an NH 3 production of 2.9 μg mg cat. -1 h -1 at -0.3 V (versus RHE), ∼5.7-fold higher than CN/C 500 . The Faradaic efficiency for CN/C 600 is among the highest of 62.1%, 33.9%, and 16.8% at -0.1 V, -0.2 V, and -0.3 V, respectively. The NH 3 production was verified by isotope 15 N 2 experiments. Further increase of N-defects on CN/C 600 using plasma etching led to higher NH 3 yield than comparably larger current, pointing to N-defects sites for promoting NRR.
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