Fluorescence of functionalized graphene quantum dots prepared from infrared-assisted pyrolysis of citric acid and urea

This paper reports an efficient fabrication of N-doped graphene quantum dots (GQDs) showing controllable chemical and fluorescence (FL) properties through infrared carbonization (IRC) of citric acid and urea. The GQDs prefer to form an equilibrium shapes of circle with an average particle size range...

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Veröffentlicht in:Journal of luminescence 2020-01, Vol.217, p.116774, Article 116774
Hauptverfasser: Gu, Siyong, Hsieh, Chien-Te, Yuan, Chun-Yao, Ashraf Gandomi, Yasser, Chang, Jeng-Kuei, Fu, Chun-Chieh, Yang, Jou-Wen, Juang, Ruey-Shin
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Sprache:eng
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Zusammenfassung:This paper reports an efficient fabrication of N-doped graphene quantum dots (GQDs) showing controllable chemical and fluorescence (FL) properties through infrared carbonization (IRC) of citric acid and urea. The GQDs prefer to form an equilibrium shapes of circle with an average particle size ranged from 5 to 10 nm. The N/C atomic ratio in GQDs can be precisely tailored in a range from 21.6 to 49.6 at.% by simply controlling the weight ratio of citric acid to urea. With increasing the urea content, the GQDs not only contain N-doped graphene but also incorporate with crystalline cyanuric acid, forming a binary crystallinity. The quantum yield of 22.2% is achieved by N-doped GQDs, prepared from the IRC synthesis of chemical precursor at the citric acid/urea at 3:1. Excessive N and cyanuric acid can lead to FL quenching, red shift and wide spectral distribution. The design of GQDs possesses a multiple chromophoric band-gap structure, originated from the presence of cyanuric acid, defect-related emissive traps, and functional group distributions. This work offers an effective and inspiring approach to engineering both chemical compositions and unique crystalline structures of GQDs, and will therefore facilitate their fundamental research and applications to optical, sensing, energy and biological fields. [Display omitted] •We report an infrared carbonization to synthesize graphene quantum dots (GQDs).•The N/C atomic ratio in GQDs was tailored in a range from 21.6 to 49.6 at.%.•The quantum yield of 22.2% is achieved, prepared from the citric acid/urea at 3:1.•The design of GQDs possesses a multiple chromophoric band-gap structure.•We offer an inspiring approach to engineering unique crystalline structure of GQDs.
ISSN:0022-2313
1872-7883
DOI:10.1016/j.jlumin.2019.116774