Chemical and thermal properties of VO<sub>2</sub> mechanochemically derived from V<sub>2</sub>O<sub>5</sub> by co-milling with paraffin wax

Chika Takai, Mamoru Senna, S. Hoshino, Hadi Razavi‐Khosroshahi, Masayoshi Fuji

RSC Advances · 2018 · 17 citations · 32 references

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Abstract

A novel mechanochemical reduction process of V<sub>2</sub>O<sub>5</sub> to VO<sub>2</sub> was established by milling with paraffin wax (PW, average molecular weight 254-646), serving as a reductant. The reduction progressed with increasing milling time and mass ratio V<sub>2</sub>O<sub>5</sub> : PW (MRVP). The mechanochemically derived VO<sub>2</sub> became phase pure after milling for 3 h with an MRVP of 30 : 1 and exhibited a reversible polymorphic transformation between tetragonal and monoclinic phases at around 53-60 °C and 67-79 °C during heating and cooling, respectively. The latent heat was above 20 J g<sup>-1</sup> in both processes, being superior to those of commercial VO<sub>2</sub>. Doping of starting V<sub>2</sub>O<sub>5</sub> with Cr, Mo or W at 1 at% in the form of oxide did not increase the latent heat. This is another difference from the conventionally prepared doped VO<sub>2</sub>. These anomalous heat storage properties of mechanochemically derived VO<sub>2</sub> were discussed mainly on the basis of X-ray photoelectron spectroscopy V<sub>2p3/2</sub> peaks combined with ion etching. The observed relatively high heat storage capacity of undoped VO<sub>2</sub> is primarily ascribed to the abundance of V<sup>4+</sup> ionic states introduced during milling with PW, which were stabilized with simultaneously introduced structural degradation throughout the entire particles. The possible role of a remaining small amount of PW was also discussed.

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