Process of preparing alkali metal titanates
A lithium titanate product, the formula of which is in the form of Li x Ti y O z , and wherein y is 1, the x:y molar is 1.1-1.8, while the z:y molar ratio is 2.0-4.5. Also disclosed is a method of preparing alkali metal titanates, such as lithium titanate, at a low temperature of below 100° C., from an aqueous titanium-containing slurry and an alkali metal compound.
1. A process of preparing alkali metal titanate, comprising the steps of:
i) mixing an aqueous, titanium-containing slurry with an alkali metal compound to form a mixture;
ii) allowing the mixture to react at a temperature of 20-100° C. by agitating it at normal pressure for 20 hours maximum to form an alkali metal titanate solution; and
iii) drying the alkali metal titanate solution of step ii) to form a dried crystalline alkali metal titanate product.
2. The process according to claim 1 , wherein the mixture is allowed to react to form the alkali metal titanate at a temperature of less than 75° C.
3. The process according to claim 1 , wherein the mixture is allowed to react to form the alkali metal titanate at a temperature greater than 30° C. minimum.
4. The process according to claim 1 , wherein the alkali metal compound is an alkali metal hydroxide in solid form.
5. The process according to claim 1 , wherein the mixture is allowed to react to form the alkali metal titanate for a period of less than 3 hours.
6. The process according to claim 1 , wherein the aqueous titanium-containing slurry contains sodium titanate.
7. The process according to claim 6 , wherein the sodium titanate is prepared by reacting a titanium dioxide hydrate originating from a sulphate process in the production of titanium dioxide with alkali.
8. The process according to claim 7 , wherein the sodium titanate is prepared by a process comprising the steps:
i) elutriating titanium dioxide hydrate from ilmenite concentrate in water to a density of 300-400 g/l resulting in a titanium dioxide hydrate slurry,
ii) boiling said titanium hydrate slurry with alkali at a pH above 11 resulting in a sodium titanate slurry,
iii) washing out soluble sulphate salts from said sodium titanate slurry, and
iv) filtering thus obtained sodium titanate slurry.
9. The process according to claim 6 , wherein the sodium titanate is elutriated in water into a slurry with a density of 100-800 g/l.
10. The process according to claim 1 , wherein the aqueous titanium-containing slurry is prepared from titanyl chloride originating from a sulphate process in the production of titanium dioxide.
11. The process according to claim 10 , wherein the aqueous titanium-containing slurry is prepared by precipitating or hydrolysing titanyl chloride originating from a sulphate process in the production of titanium dioxide.
12. The process according to claim 1 , wherein the aqueous titanium-containing slurry is prepared by a process comprising the steps:
i) thermally hydrolysing titanyl chloride, originating from an ilmenite concentrate of a sulphate process in the production of titanium dioxide, with sulphuric acid into titanium dioxide hydrate, and
ii) elutriating the resulting titanium dioxide hydrate in water to form a titanium dioxide hydrate slurry with a density of 300-400 g/l.
13. The process according to claim 1 , further comprising heat-treating the dried alkali metal titanate product at a temperature of 500-1050° C., and rendering the crystal structure of the dried alkali metal titanate product tetragonal.
14. The process according to claim 1 , wherein the alkali metal hydroxide and the aqueous titanium-containing slurry have a molar ratio of alkali metal:Ti of 1.1-2.0.