[0001] The present invention relates to an electrolytic process for the manufacture of salts.
[0002] The production of salts. i.e. the chemical compounds formed by metal ions and acid/alkali
anions, can be carried out in many ways. Traditionally the simplest routes have been
selected, for example those metals which are readily and easily attacked by the acids
or alkalis to form salts are well known,

For metals which are not readily attacked by the particular acids then synthetic routes
via metal containing compounds are preferred,

It will be appreciated however, that the use of a compound containing a metal for
salt formation is always more expensive than the use of the metal itself and a direct
route is therefore economically preferable. However, in many cases the direct route
is not thermodynamically favoured and aggresive reaction conditions such as high temperatures
and pressures and long reaction times are often required. These processes become expensive
in energy, time and capital costs.
[0003] We have now developed an economic electrolytic process for the manufacture of salts
in which the energy involved is mainly that of an anodic corrosion process.
[0004] Accordingly, the present invention provides a process for the manufacture of a metal
salt, which process comprises passing an electric current through an electrolytic
cell comprising an anode formed from or containing the said metal, a cathode, &n anolyte
which will provide the anions to form the salt and a catholyte, the anode and the
cathode being separated by a microporous plastics separator which has a pore size
in the range of from 0.01 to 10 microns and a pore volume in the range of from 45
to 55%.
[0005] In the process of the present invention, the metal which forms the anode loses electrons
to give metal ions, e.g. M
2+ by one reaction

These ions exist either as totally ionised metal ions together with the corresponding
anions A , or in an equlibrium

The position of this equilibrium depends upon the temperature, metal ion concentration,
pH etc.
[0006] The anode may comprise one of the following:
a) an ingot of the metal whose salt is to be produced,
b) granulated metal or scrap pieces of the metal whose salt is to be produced contained
in a conductive basket or an insulated basket with an appropriate current feed,
c) a non-soluble anode when the process is used to change the valency state of a metal
ion and thus the nature of the salt which constitutes the anolyte, and
d) granulated or particulate samples of mixed metals where metal separation and salt
production are required.
[0007] The cathode used in the process of the present invention remains inert and since
in general some of the metal will pass through the separator and coat the cathode
it is preferred to use a cathode of the metal concerned, although a cathode of another
metal may also be used.
[0008] A cathodic reaction takes place at the cathode, for example the production of hydrogen
by the reduction of the acid cation:

[0009] When hydrogen is produced during the reaction then it is necessary to ventilate the
cell, or to remove the hydrogen in some other manner, in order to avoid the build-up
of hydrogen and the associated danger of explosion.
[0010] Other cathodic reactions can also be carried out.
[0011] The anolyte is an electrolyte which contains ions that will conduct electricity,
which provides the anions so as to form the metal salt, and in which the metal salt
produced in the process of the invention is reasonably soluble. The anolyte may be
an acid, such as sulphuric acid, hydrochloric acid, nitric acid, acetic acid, or an
alkali, such as sodium or potassium hydroxide, or ammonium hydroxide.
[0012] The catholyte may comprise any electrolyte, but the preferred catholyte is an electrolyte
which is the same as the anolyte, but not necessarily at the same concentration.
[0013] The process of the present invention is suitable for the production of many metal
salts and, in particular, salts of cobalt, nickel and tin. Specific examples of salts
which may be prepared by the process of the invention are stannous sulphate, silver
nitrate, copper acetate, cobalt chloride, cobalt acetate and manganese acetate.
[0014] The temperature, concentration and current density employed in the process of the
invention depend upon the reaction which is being carried out.
[0015] The microporous plastics separator used in the process of the present invention preferably
has a pore size in the range of from 0.01 to 0.1 microns and a pore volume of about
50%. The porosity or pore volumne controls the electrical resistance of the separator,
whilst the pore size influences the transport of ions across the separator. The microporous
plastics separator should be chemically resistant to its environment at the operating
temperature and the operating pH. It should also be made from a plastics material
which is wettable, or which can be treated to render it wettable, and possesses sufficient
mechanical strength so that it is capable of being engineered into an appropriate
support. It must be capable of transporting ions under an electrical and/or concentration
gradient and it must also permit a reasonably high current density e.g. SOmA/cm
2 of separator surface. Examples of the microporous plastics separator are a filled
polyethylene separator sold under the Trade Name DARAMIC (W.R. Grace & Co.), an irradiated
polyethylene separator sold by Raychem, a microporous polyolefin manufactured by Schumacher,
a compound called GORTEX which is a microporous polytetrafluoroethylene and a product
called VYON/PORVAIR which is a microporous high density polyethylene. The separator
is usually fabricated onto a support frame, for example by means of an adhesive or
by thermal or ultrasonic welding. Such a frame enables the separator to be mounted
in a cell and provides some support to the separator against bulging which is particularly
important for those materials which expand when wet and bulge.
[0016] It will be understood that any two or three compartment cell may be used in the present
invention. However, it is generally more convenient to design a cell having the anode,
cathode and separator planar to the walls of the vessel in which they are placed.
Similar considerations apply when using a granular anode since the baskets in which
the material is held are usually planar and rectangular baskets are easier to handle
than circular ones. The cell should preferably have a symmetrical design so that the
anode is attacked from both sides at an equal rate. The electrodes may be suspended
in the cell from appropriate hooks e.g. of titanium, from lugs cast onto the electrode
or by bolting the electrodes onto an appropriate bus bar.
[0017] The process of the present invention may be a continuous or a batch process. For
continuous operation some pumping of the electrolytes will be required but it is preferable
to use external pumps so as not to interfere with the cell symmetry. Similarly if
heating is required it is preferred that it is either external or that electrically
controlled heating elements are positioned at the sides of the anode and cathode compartments
of the cell.
[0018] Stirring is often beneficial in order to even the rate of corrosion of the anode.
Gas stirring is preferred as it leaves the cell uncluttered and is easily controlled.
[0019] The volume of the anolyte depends mainly upon the throughput required and thus is
generally related to the product requirement, the stability of the product and the
size of any ancillary equipment used for working up and extracting the product.
[0020] The volume of the catholyte is preferably the same as that of the anolyte since it
is preferred to use the catholyte to replace the anolyte on completion of the reaction.
[0021] In order to optimise the economics of the cell the anode area should be as large
as possible, providing that the available area of microporous plastics separator can
pass the current required having regard to the optimum current density required for
the process. The cathode area is preferably chosen to be one of two extremes. Either
the surface area is large and the current density is kept low so that any metal ions
penetrating to the cathode compartment are electrodeposited onto the cathode, or the
surfaces are small and the current density is kept high and hydrogen evolution prevents
much of the metal being deposited on the cathode.
[0022] It is also possible to carry out the process of the present invention in a filter
press type cell in which each segment of the cell is separated from the next segment
of the cell by means of a separator as hereinbefore described. Alternate pairs of
separators provide the anode compartment and cathode compartment, respectively. A
filter press type cell is particularly useful for carrying out the process of the
invention in a continuous manner. It is possible to alter the rate of flow through
the cell and the current density so that a solution of the metal salt is produced
which has an appropriate concentration of the metal salt therein. The metal salt solution
produced may in some instances be used without further processing in a conventional
chemical process. Carrying out the process of the present invention continuously using
a filter press type cell is advantageous if a relatively unstable metal salt is produced
since the process time is minimized and this helps to avoid disintegration of the
unstable salt.
[0023] When a granular anode is used in the process of the invention it is preferred for
the separator to surround the anode basket. In this arrangement the cell does not
have separate compartments. The volume of anolyte required is thus considerably reduced
since it is equal to the volume of the basket surrounded by the separator minus the
volume of the granulated metal. The anolyte is pumped into and out of each anode basket
surrounded by separator, for example by means of a pipe which extends into the basket.
It is thus possible using this arrangment for the metal salt solution to be removed
from the cell at regular intervals, i.e. in a semi-continuous manner.
[0024] The process of the present invention will be further described with reference to
the accompanying Figure which shows a cell in which the reaction may be carried out.
[0025] Referring to the drawing, anodes 1 are placed in the central compartment 6 of a five
compartment cell. The anodes are hung from the anode rail 2. On either side of the
anode compartment 6 are middle compartments 6 which do not contain any electrodes.
The middle compartments 8 are separated from the anode compartment by separators 5
of a microporous plastics material. On either side of the middle compartments 8 are
cathode compartments 7 which are separated from the middle compartments by separators
5 of a microporous plastics material. The cathode compartments 7 contain cathodes
3 which are suspended from cathode rails 4. The compartments 6, 7 and 8 are filled
with the appropriate electrolyte and the current switched on and adjusted to the required
current density.
[0026] As the reaction proceeds the metal ion concentration in compartment 6 builds up and
as the anodes 1 corrode they are replaced by fresh anodes. The anodes are preferably
replaced in sequence as this permits a realistic amount of the anode area to be used
and hence a reasonable current density to be used. If an appreciable amount of the
metal, say 7 to 10%, has been coated onto the cathode, then the cathode may be hung
on the anode rail to function as an anode until the coating has redissolved.
[0027] When the metal salt produced in compartment 6 reaches a level where extraction is
viable, the anodes are removed from the compartment, the anolyte pumped out of the
cell and the anolyte replaced either by fresh electrolyte which is generally the electrolyte
from compartments 7 or 8, if necessary augmented with further chemicals.
[0028] The anodes in compartment 6 are replaced, all of the compartments 6, 7, and 8 are
topped up with electrolyte, as necessary, and the cell switched on for the process
to recommence.
[0029] The present invention will be further described with reference to the following Examples.
Example 1
Production of Stannous Sulphate
[0030] A tin anode was dissolved in 2N sulphuric acid in a two compartment cell having a
microporous polyethylene separator separating the anode and cathode compartments which
both had a volume of 2.5L (total cell volume 5L). The cell was operated under the
following conditions:

Example 2
Production of Stannous Sulphate
[0031] A tin anode was dissolved in 2N sulghuric acid in a two compartment cell having a
filled microporous polyethylene separator separating the anode and cathode compartments.
The cell had a total volume of 20L (7L anolyte and 13L catholyte). The cell was operated
under the following conditions:

Example 3
Production of Silver Nitrate
[0032] A silver anode was dissolved in 1N nitric acid in a three compartment cell having
a filled microporous polyethylene separators separating the compartments thereof.
The anode and cathode compartments of the cell both had volumes of 0.5L. The cell
was operated under the following conditions:

Example 4
Production of Cobalt Chloride
[0033] Cobalt chips were placed in a titanium anode basket in 5N hydrochloric acid in a
two compartment cell having a filled microporous polyethylene separator separating
the anode and cathode compartments which both had a volume of 1.OL (total cell volume
2L). The cell was operated under the following conditions:

Example 5
Production of Copper Acetate
[0034] A copper anode was dissolved in 2N acetic acid in a two compartment cell having a
filled microporous polyethylene separator separating the anode and cathode compartments
which both had a volume of 0.5L (total cell volume 1L). The cell was operated under
the following conditions:

Example 6
Production of Gold Chloride
[0035] A gold anode was dissolved in 5N hydrochloric acid in a three compartment cell having
a filling microporous polyethylene separator separating the cell compartments which
all had a volume of 0.2L (total cell volume 0.6L). The cell was operated under the
following conditions:

Example 7
Production of Cuprammonium Salt
[0036] A copper anode was dissolved in a mixture of 4M ammonium hydroxide and 1M ammonium
nitrate in a two compartment cell having a polyethylene separator sold under the Trade
Name DARAMIC separating the anode and cathode compartments. The cell was operated
under the following conditions:

[0037] The above run was repeated under the same conditions using a microporous polytetrafluoroethylene
separator which had been rendered wettable by immersion in methanol for about 1 hour.
Similar results were obtained.
Example 8
Production of Copper Pyrophosphate.
[0038] A copper anode was dissolved in a mixture of 2M sodium pyrophosphate, 0.5M sodium
nitrate and O.lM ammonium hydroxide in a two compartment cell having a filled microporous
polyethylene separator separating the anode and cathode compartments. The cell was
operated under the following conditions:

[0039] The above run was repeated under the same conditions using a microporous polytetrafluoroethylene
separator sold under the name GORTEX which had been rendered wettable by immersion
in methanol for about 1 hour. Similar results were obtained.
Example 9
Production of Sodium (or Potassium) Stannate.
[0040] A tin anode was dissolved in 3N sodium or potassium hydroxide in a two compartment
cell having a microporous polytetrafluoroethylene separator sold under the name of
GORTEX separating the anode and cathode compartments. The separator had previously
been rendered wettable by immersion in methanol for about 1 hour. The cell was operated
under the following conditions:

[0041] The above run was repeated under the same conditions using a similarly wetted microporous
polytetrafluoroethylene manufactured by Doulton Industrial Products Limited. Similar
results were obtained.
[0042] It will be understood by those skilled in the art that the process of the present
invention cannot be used to produce salts where the acid/alkali starting material
would attack the separator e.g. hydrogen fluoride would attack the microporous plastics
separator. The process also cannot be used to produce insoluble salts unless other
means, such as periodic renewal, rotation of the anode or mechanical clearing is carried
out since the anode would rapidly become coated with the insoluble product thereby
causing the cell voltage to rise and the process to stop. The process furthermore
cannot be used where the product is thermodynamically unstable under the cell operating
conditions or where the anode is rendered passive by the acid/alkali starting material.
1. A process for the manufacture of a metal salt, which process comprises passing
an electric current through an electrolytic cell comprising an anode formed from or
containing the said metal, a cathode, an anolyte which will provide the anions to
form the salt and a catholyte, the anode and the cathode being separated by a microporous
plastics separator which has a pore size in the range of from 0.01 to 10 microns and
a pore volume in the range of from 45 to 55%.
2. A process as claimed in claim 1 wherein the anode is an ingot of the metal whose
salt is to be produced.
3. A process as claimed in claim 1 wherein the anode is granulated metal or scrap
pieces of the metal whose salt is to be produced.
4. A process as claimed in claim 1 wherein the anode is a non-soluble anode.
5. A process as claimed in claim 1 wherein the anode comprises granulated or particulate
samples of mixed metals.
6. A process as claimed in any one of the preceding claims wherein the cathode is
formed from the metal whose salt is to be produced.
7. A process as claimed in any one of the preceding claims wherein the anolyte is
an acid.
8. A process as claimed in claim 7 wherein the acid is sulphuric acid, hydrochloric
acid, nitric acid or acetic acid.
9. A process as claimed in any one of claims 1 to 6 wherein the anolyte is an alkali.
10. A process as claimed in claim 9 wherein the alkali is sodium hydroxide, potassium
hydroxide or ammonium hydroxide.
11. A process as claimed in any one of the preceding claims wherein the catholyte
is an electrolyte which is the same as the anolyte.
12. A process as claimed in any one of the preceding claims wherein the microporous
plastics separator has a pore size in the range of from 0.01 to 0.1 microns and a
pore volume of about 50%.
13. A process as claimed in any one of the preceding claims wherein the microporous
plastics separator is made from a plastics material which is wettable or which can
be treated to render it wettable.
14. A process as claimed in any one of the preceding claims which is carried out continuously
or semi-continously.