EP1567449A2

Plasma synthesis of metal oxide nanopowder

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 1 December 2023, 2.8 years ago.

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44 claims: 3 independent, 41 dependent

  1. 1
    Claims of equivalent WO 2004052778 A2 What is claimed is:1. A process for the synthesis of a metal oxide nanopowder from a metal compound vapour, comprising: generating an induction plasma jet by passing a working gas through a high frequency electromagnetic field;introducing said metal compound vapour and said induction plasma jet through a first axial end of a reactor;said plasma jet causing the metal compound vapour to reach a reaction temperature and to react with said working gas, yielding nanosized metal oxide particles;rapidly cooling said nanosized metal oxide particles in a quench zone of said reactor located downstream from said first axial end, thereby stopping the growth process of said nanosized metal oxide particles, yielding metal oxide nanopowder;and collecting said metal oxide nanopowder downstream from said quench zone;whereby, the combination of a) reacting the metal oxide compound with said induction plasma;induction plasma allowing for sufficiently large volume discharge and sufficiently long residence time in said reactor, and b) said rapidly cooling said yielded nanosized particles in a quench zone, allows to control said metal oxide particles sizes.
  2. 28
    A process for the synthesis of Ti0 2 nanopowder from a TiCl 4 vapour, comprising:creating an induction plasma jet by passing a working gas through an a high frequency electromagnetic field;introducing said TiCI vapour and said induction plasma jet through a first axial end of a reactor;said plasma jet causing the TiCU vapour to reach a reaction temperature and to react with said working gas, yielding nanosized Ti0 2 particles;rapidly cooling said nanosized TiO 2 particles in a quench zone of said reactor located downstream from said first axial end, thereby stopping the growth process of said nanosized Ti0 2 particles, yielding Ti0 2 nanopowder;and collecting said Ti0 2 nanopowder downstream from said quench zone;whereby, said yielded TiO 2 nanopowder is prominently in its anatase phase.
  3. 33
    An apparatus for synthesizing a metal oxide nanopowder from a metal compound vapour, comprising:a reaction chamber including a vertically disposed generally tubular chamber section and a taper chamber section mounted at a lower end of said vertically disposed generally tubular chamber section for collecting synthesized metal oxide nanopowder;an induction plasma assembly including a reactant mixing chamber mounted to an upper end of said vertically disposed generally tubular chamber section so as to be in fluid communication with said reaction chamber;said induction plasma assembly further including an inductive coil surrounding said reactant mixing chamber for generating a high frequency magnetic field in said reactant mixing chamber, a first inlet for receiving a first working gas and a second inlet for receiving the metal compound vapour;said first and second inlet being connected to said generally tubular reactant mixing chamber;and a plurality of quench gas nozzles connected to the periphery of said vertically disposed generally tubular chamber section below the upper end thereof for creating a quench zone in said reaction chamber;whereby, in operation, an induction plasma jet is created by passing a working gas through said high frequency electromagnetic field in said reactant mixing chamber;said induction plasma jet and the metal compound vapour being introduced in said reaction chamber;said plasma jet causing the metal compound vapour to reach a reaction temperature and to react with said working gas, yielding nanosized metal oxide particles;said nanosized metal oxide particles being rapidly cooled in said quench zone of said reactor, thereby stopping the growth process of said nanosized metal oxide particles, yielding metal oxide nanopowder.