articleTop 1% cited
Nitrogen-doped, carbon-rich, highly photoluminescent carbon dots from ammonium citrate
Nanoscale · 2013 · Vol. 6(3) · pp. 1890–1895
Zhi Yang(Shanghai Jiao Tong University)Minghan Xu(Shanghai Jiao Tong University)Yun Liu(Shanghai Jiao Tong University)Fengjiao He(Shanghai Jiao Tong University)Feng Gao(Shanghai Jiao Tong University)Yanjie Su(Shanghai Jiao Tong University)Hao Wei✉(Shanghai Jiao Tong University)Yafei Zhang✉(Shanghai Jiao Tong University)
Abstract
The synthesis of water-soluble nitrogen-doped carbon dots has received great attention, due to their wide applications in oxygen reduction reaction, cell imaging, sensors, and drug delivery. Herein, nitrogen-doped, carbon-rich, highly photoluminescent carbon dots have been synthesized for the first time from ammonium citrate under hydrothermal conditions. The obtained nitrogen-doped carbon dots possess bright blue luminescence, short fluorescence lifetime, pH-sensitivity and excellent stability at a high salt concentration. They have potential to be used for pH sensors, cell imaging, solar cells, and photocatalysis.
Carbon and Quantum Dots ApplicationsNanocluster Synthesis and ApplicationsLuminescence and Fluorescent MaterialsCarbon fibersAmmoniumPhotoluminescenceDopingMaterials scienceNitrogenInorganic chemistryNanotechnologyChemical engineeringChemistry
MeSH terms
Quaternary Ammonium CompoundsCarbonCatalysisHydrogen-Ion ConcentrationNitrogenParticle SizePhotochemistrySaltsSolubilityWaterX-Ray DiffractionBiosensing TechniquesDrug Delivery SystemsSpectroscopy, Fourier Transform InfraredCitric Acid
Funding
- National Natural Science Foundation of China
- Shanghai Jiao Tong University
- Program for New Century Excellent Talents in University
Citations
931
FWCI
22.98
field-weighted impact
References
43
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100%
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References
Facile preparation and upconversion luminescence of graphene quantum dots
Chemical Communications · 2010 · 801 citations
Quantum dots versus organic dyes as fluorescent labels
Nature Methods · 2008 · 3,722 citations
One-pot green synthesis of optically pH-sensitive carbon dots with upconversion luminescence
Nanoscale · 2012 · 788 citations
Improved monomeric red, orange and yellow fluorescent proteins derived from Discosoma sp. red fluorescent protein
Nature Biotechnology · 2004 · 4,659 citations
Carbon Dots Prepared by Hydrothermal Treatment of Dopamine as an Effective Fluorescent Sensing Platform for the Label‐Free Detection of Iron(III) Ions and Dopamine
Chemistry - A European Journal · 2013 · 702 citations
Quantum sized, thiolate-protected gold nanoclusters
Nanoscale · 2009 · 1,424 citations
Luminescent Carbon Nanodots: Emergent Nanolights
Angewandte Chemie International Edition · 2010 · 4,764 citations
Microwave synthesis of fluorescent carbon nanoparticles with electrochemiluminescence properties
Chemical Communications · 2009 · 1,322 citations
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