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Room‐Temperature Vortex Fluidic Flow Chemistry Synthesis of Full Color Carbon Dots
Author(s) -
Chen Dechao,
Usman Zia Muhammad,
Alharbi Thaar M. D.,
Harmer Jeffrey R.,
Raston Colin L.,
Li Qin
Publication year - 2025
Publication title -
chemsuschem
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.412
H-Index - 157
eISSN - 1864-564X
pISSN - 1864-5631
DOI - 10.1002/cssc.202402182
Subject(s) - fluidics , quantum dot , nanoparticle , photoluminescence , materials science , carbon fibers , nanotechnology , vortex , flow chemistry , chemical engineering , optoelectronics , chemistry , composite material , organic chemistry , catalysis , thermodynamics , composite number , physics , aerospace engineering , engineering
Abstract Carbon dots (CDs) as a new class of photoluminescent zero‐dimension carbon nanoparticles have attracted significant research interests owing to their extraordinary opto‐electro‐properties and biocompatibility. So far, almost all syntheses of CDs require either heat treatment or exertion of high energy fields. Herein, a scalable room‐temperature vortex fluidic method is introduced to the CDs synthesis using the angled vortex fluidic device (VFD). By judicious selection of the solvent, typical CDs precursor of phenylenediamine has been converted into high crystalline CDs through VFD processing. The VFD‐synthesized CDs cover the full color spectrum from blue to red with the highest quantum yield of 45.6 %. The synthesis shows that the dynamic thin liquid film generated by VFD spun at high rotational speed (7–9 k RPM) is able to induce cycloaddition reactions. The new method for CD synthesis is facile, occurring under ambient conditions in the VFD, potentially offering industrial scaling up of production of full color carbon dots.

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