Photocatalytic active ZnO$_{1-x}$S$_x$@CNTs heteronanostructures
Andjelika Bjelajac (LPICM, LIST), Ileana Florea (LPICM), Mihai Zamfir, (LPICM), Sandrine Tusseau Nenez (LPMC, CNRS, Ecole Polytechnique, IPP),, Costel Sorin Cojocaru (LPICM)

TL;DR
This paper reports on the synthesis and characterization of ZnO$_{1-x}$S$_x$@CNT heteronanostructures, demonstrating enhanced visible light absorption and improved photocatalytic degradation of methyl blue dye due to S doping and CNT involvement.
Contribution
It introduces a novel method for creating ZnO/ZnS heterostructures on CNTs with controlled defects, enhancing photocatalytic activity through combined S doping and CNT integration.
Findings
Absorption edge shifted to 417 nm in ZnO$_{1-x}$S$_x$@CNTs
Enhanced photocatalytic degradation of methyl blue dye
ZnO$_{1-x}$S$_x$@CNTs showed superior performance compared to pure ZnO and ZnS
Abstract
Herein, we report on the use of vertically aligned multiwall carbon nanotubes (CNTs) films as support for ZnO/ZnS photocatalytic active nanostructures. The CNTs were synthetized via a hot-filament chemical vapor deposition (HfCVD), using Fe catalyst on top of AlO buffer layer. Controlled point defects in the CNTs outer walls were created by exposure to a low pressure nonthermal water vapors diffusive plasma and acted as seeds for subsequent pulsed-electrodeposition of Zn nanoparticles. This was to achieve a direct and improved contact between the nanoparticles and CNTs. To obtain ZnO, ZnS and mix phase of ZnO/ZnS spread on CNTs, the oxidation, sulfurization and 2 steps subsequent annealing in oxygen and sulfur rich atmospheres were applied. High resolution transmission electron microscopy (HRTEM) with energy dispersive X-rays spectroscopy (EDS) in scanning mode, provided the…
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