Energy Technology · 2016 · 71 citations · 50 references
Materials ScienceGraphene NanomeshesElectrical EngineeringChemical EngineeringElectronic DevicesSuperior Photoconversion EfficiencyEngineeringNanomaterialsEnergy ConversionPristine ZnoOptoelectronic MaterialsElectrochemical Power SourceCarbon-based MaterialInorganic PhotochemistryGrapheneGraphene Quantum DotHydrothermal ProcessChemistry
Abstract Nitrogen‐doped graphene quantum dots (N‐GQDs) have been synthesized using a hydrothermal process. The N‐GQDs are highly crystalline with a size of 3–7 nm and made up of 1–3 layers of graphene. UV/Vis absorption studies reveal two major absorption peaks at 237 and 334 nm, which are attributed to the π→π* transition of C=C and n→π* transition of C=O bonds, respectively. The additional broad peak observed at 460–500 nm is attributed to the n→π* transition of C=N bonds. The N‐GQDs are highly luminescent and exhibit excitation‐dependent emission. The photoelectrochemical properties of pristine ZnO and N‐GQD‐sensitized ZnO nanorods have been investigated. N‐GQD‐sensitized nanorod photoanodes demonstrate superior photoconversion efficiency, incident photon‐to‐current conversion efficiency, and power conversion efficiency compared with pristine ZnO nanorods.
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Graphene Quantum Dots Derived from Carbon Fibers
Juan Peng, Wei Gao, Bipin Kumar Gupta et al. · Nano Letters · 2012 · 2.3K citations