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Srimala Sreekantan

Researcher at Universiti Sains Malaysia

Publications -  205
Citations -  3053

Srimala Sreekantan is an academic researcher from Universiti Sains Malaysia. The author has contributed to research in topics: Nanotube & Anatase. The author has an hindex of 29, co-authored 193 publications receiving 2551 citations. Previous affiliations of Srimala Sreekantan include Universiti Sains Malaysia Engineering Campus.

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Study on the formation and photocatalytic activity of titanate nanotubes synthesized via hydrothermal method

TL;DR: In this paper, the effect of NaOH to TiO 2 ratio, reaction temperature, reaction time and annealing temperature on the formation of nanotubes was investigated using X-ray diffraction, field emission microscope and Transmission electron microscope.
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Photoactivity of anatase–rutile TiO2 nanotubes formed by anodization method

TL;DR: In this paper, the morphology of an anodized titanium is a function of anodization voltage with pits-like oxide formed for the sample made at 5-V and samples made at 20-V, 30-V consisted of well-aligned nanotubes growing perpendicularly on the titanium foil.
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Mechanisms of removal of heavy metal ions by ZnO particles.

TL;DR: In this work, different mechanisms of heavy metal ions removal using ZnO particles were studied using solid precipitation technique and found that poor removal efficiency was observed for Cr(VI), Mn(II), Cd( II) and Ni(II) ions.
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Preparation of hybrid WO3-TiO2 nanotube photoelectrodes using anodization and wet impregnation: Improved water-splitting hydrogen generation performance

TL;DR: In this article, the optimum soaking time in ammonium paratungstate used as the tungsten precursor for incorporating WO3 species into TiO2 nanotube photoelectrodes was determined.
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Fast-rate formation of TiO2 nanotube arrays in an organic bath and their applications in photocatalysis.

TL;DR: Results indicate that a nanotube with an average diameter of 140 nm and an optimal tube length of 18.5 microm with a thin tube wall (20 nm) is the optimum structure required to achieve high photocatalytic reaction.