Direct nitrogen fixation at the edges of graphene nanoplatelets as efficient electrocatalysts for energy conversion
- Authors
- Jeon, In-Yup; Choi, Hyun-Jung; Ju, Myung Jong; Choi, In Taek; Lim, Kimin; Ko, Jaejung; Kim, Hwan Kyu; Kim, Jae Cheon; Lee, Jae-Joon; Shin, Dongbin; Jung, Sun-Min; Seo, Jeong-Min; Kim, Min-Jung; Park, Noejung; Dai, Liming; Baek, Jong-Beom
- Issue Date
- 23-7월-2013
- Publisher
- NATURE PUBLISHING GROUP
- Citation
- SCIENTIFIC REPORTS, v.3
- Indexed
- SCIE
SCOPUS
- Journal Title
- SCIENTIFIC REPORTS
- Volume
- 3
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/102677
- DOI
- 10.1038/srep02260
- ISSN
- 2045-2322
- Abstract
- Nitrogen fixation is essential for the synthesis of many important chemicals (e. g., fertilizers, explosives) and basic building blocks for all forms of life (e. g., nucleotides for DNA and RNA, amino acids for proteins). However, direct nitrogen fixation is challenging as nitrogen (N-2) does not easily react with other chemicals. By dry ball-milling graphite with N-2, we have discovered a simple, but versatile, scalable and eco-friendly, approach to direct fixation of N-2 at the edges of graphene nanoplatelets (GnPs). The mechanochemical cracking of graphitic C-C bonds generated active carbon species that react directly with N-2 to form fiveand six-membered aromatic rings at the broken edges, leading to solution-processable edge-nitrogenated graphene nanoplatelets (NGnPs) with superb catalytic performance in both dye-sensitized solar cells and fuel cells to replace conventional Pt-based catalysts for energy conversion.
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Collections - Graduate School > Department of Advanced Materials Chemistry > 1. Journal Articles
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