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April 19, 2026Water1 citationsOpen Access

Optimised Operating Conditions and Performance Landscape of Metal-Doped Carbon Dots for Dye Decolourisation in Water Treatment Systems

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WCWeiyun ChenHYHong YinKAKarthiga Anpalagan

Key Points

  • This work aims to understand how temperature, H2O2 dosage, and pH affect the catalytic degradation of dyes using metal-doped carbon dots.
  • Utilised Taguchi L27 orthogonal array design to optimise conditions.
  • Tested different metal dopants: Fe, Cu, Zn, and Mg in carbon dots.
  • Measured dye degradation performance across varying temperatures and pH levels.
  • Optimal conditions resulted in dye removal rates from ~17% to nearly 100%.
  • Best performance achieved at 50 °C and pH 7 for Fe- and Cu-doped carbon dots.
  • Higher temperatures increased reaction rates, while H2O2 dosage showed a peak performance effect before suppression.

Abstract

Synthetic dyes frequently persist through conventional wastewater treatment, motivating the use of advanced oxidation processes capable of breaking down these stable molecules. Metal-doped carbon dots (CDs) offer a tuneable platform for catalytic dye degradation in water, although their performance varies strongly with operating conditions. The aim of this work was to determine how temperature, H2O2 dosage, and pH influence the catalytic behaviour of Fe-, Cu-, Zn-, and Mg-doped CDs during the degradation of methylene blue (MB) and rhodamine B (RB), optimised using a Taguchi L27 orthogonal array design. Temperature and oxidant loading were the dominant factors: higher temperatures accelerated reactions through Arrhenius-type kinetics, while increasing H2O2 availability improved removal until excessive levels began to suppress •OH generation. Across all condition sets, apparent rate constants spanned 7.0 × 10−4–2.65 × 10−2 min−1, with t50 values of 26–217 min and t90 extending from ~86 min to >700 min; final decolourisation ranged from ~17% to nearly 100%. pH played a secondary role, mainly affecting dye speciation and surface adsorption. Dopant identity shifted the optimum operating region for each catalyst: Fe- and Cu-CDs achieved complete or near-complete removal of both dyes at pH 7 and 50 °C with relatively low H2O2 dosage (0.5–1.0 mL); Zn-CDs reached equivalent performance at pH 7 and 25 °C but required higher oxidant loading (1.5 mL of H2O2), reflecting their photo-induced rather than thermally driven activation mechanism; Mg-CDs performed comparably under the same conditions as Fe- and Cu-CDs. The resulting condition–catalyst map highlights the operating regimes that maximise efficiency while minimising chemical input, providing a practical framework for selecting carbon-dot-based catalysts for water treatment applications.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69e4734c010ef96374d8f17fhttps://doi.org/10.3390/w18080954
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