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January 18, 2026Materials1 citationsOpen Access

Bio-Inspired Reduced TiO2 Nanotube Photocatalyst Modified with Polydopamine and Silk Fibroin Quantum Dots for Enhanced UV and Visible-Light Photocatalysis

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CDCristina DumitriuUniversitatea Națională de Știință și Tehnologie Politehnica BucureștiSPSimona PopescuUniversitatea Națională de Știință și Tehnologie Politehnica BucureștiRMRoberta MiftodeUniversitatea Națională de Știință și Tehnologie Politehnica București

Key Points

  • This research aims to develop a reduced TiO2 nanotube photocatalyst to enhance UV and visible-light photocatalysis for wastewater treatment.
  • Produced Y-branched TiO2 nanotubes from anodized titanium plates.
  • Electrochemically reduced TiO2 nanotubes to narrow the bandgap.
  • Modified the nanotubes with polydopamine and silk fibroin quantum dots.
  • Characterized the photocatalyst using SEM and EDX techniques.
  • Achieved a bandgap of 1.03 eV and Urbach energy of 1.35 eV.
  • Demonstrated 79.26% degradation efficiency for methyl orange and 35% for tetracycline.
  • Showed reduced electrical resistance and enhanced charge transfer efficiency.

Abstract

Y-branched TiO2 nanotubes (NTs) were produced by anodizing titanium plates derived from aerospace production leftovers and subsequently engineered to develop an enhanced TiO2-based photocatalytic system. The NTs were electrochemically reduced to obtain reduced TiO2 nanotubes (rTN) with a narrowed bandgap, followed by surface modification with polydopamine (PD) and silk fibroin-derived quantum dots (QDs) to promote enhanced UV and visible-light photocatalysis for wastewater treatment. The QDs were hydrothermally synthesized from Bombyx mori silk fibroin. Scanning Electron Microscopy (SEM) revealed spherical QD agglomerates encapsulated within the PD layer, while Energy Dispersive X-ray Spectroscopy (EDX) confirmed the presence of carbon and nitrogen originating from both PD and QD. The resulting rNT/PD/QD photocatalyst exhibited a significantly reduced bandgap (1.03 eV), increased Urbach energy (1.35 eV), and moderate hydrophilicity. A high double-layer capacitance (Cdl) indicated an enlarged electrochemically active surface due to the combination of treatments. Electrochemical characterization demonstrated reduced electrical resistance, higher charge density, and lower electron–hole recombination, leading to improved interfacial charge transfer efficiency and electrochemical stability during multi-cycle cyclic voltammetry measurements. Preliminary photocatalytic tests show that the rNT/PD/QD photocatalyst achieved a degradation efficiency of 79.26% for methyl orange (MO) and 35% for tetracycline (TC).

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Cite This Study

Dumitriu et al. (2026) studied this question.

synapsesocial.com/papers/696c7835eb60fb80d13965c7https://doi.org/10.3390/ma19020358
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