CA2814701C

Process for making a monomer solution for making cation exchange membranes

Abstract

A method of making a monomer solution of styrene sulfonic acid or the pyridine salt of styrene sulfonic acid or mixtures of both in an organic solvent, said solution being suitable for producing cation exchange membranes. The method comprises the steps of dissolving a metal salt of styrene sulfonate in said organic solvent and pyridinium styrene sulfonate. The mixture solution is reacted under conditions that generate a salt byproduct precipitate and the reactant product solution is collected. Embodiments of the present invention provide for cation exchange membranes and processes for their manufacture. Membranes made by the processes described herein combine low resistance and high permselectivity which make them highly effective for membrane components in desalination of water by electrodialysis (ED), as a power generating sources in reverse electrodialysis and as separators in fuels cells.

CA2814701C, drawing sheet 1
Sheet 1 of 4

Term

5.1 yearsleft in the term

Expires 17 October 2031.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

8 claims: 1 independent, 7 dependent

  1. 1
    Claims 1. A process for producing a cation exchange membrane comprising;a) forming a first suspension of a metal salt of styrene sulfonate in an organic 5 solvent, b) adding a pyridinium salt to said first suspension to form a mixture suspension, c) causing the mixture suspension to react to form a monomer solution comprising the pyridine salt of styrene sulfonic acid or mixtures of the pyridine salt of styrene sulfonic acid and styrene sulfonic acid in said organic solvent, under 10 conditions that generate a metal salt by-product precipitate, d) optionally removing volatile pyridine by-products and other volatile species from the solution under conditions that volatilize less than 5% of said organic solvent by weight, e) and collecting the reactant solution, optionally after separation from the by15 product precipitate, choosing a porous substrate, saturating the porous regions of the substrate with a solution comprising the pyridine salt of styrene sulfonic acid or mixtures of the pyridine salt of styrene sulfonic acid and styrene sulfonic acid in an organic solvent, each made by the 20 process comprising the steps a} through e);and a crosslinking monomer, and a polymerization initiator and optionally at least one secondary monomer, or, with a solution of, one or more monomers of the pyridine salt of styrene sulfonic acid or mixtures of the pyridine salt of styrene sulfonic acid and styrene sulfonic acid in an organic solvent made by steps a) through e), a neutral monomer, a crosslinking 25 monomer, and a polymerization initiator, removing excess solution from the surfaces of the substrate while leaving the porous volume saturated with solution, initiating polymerization by the application of heat, ultraviolet light, or ionizing radiation, optionally in the absence of oxygen, to form a crosslinked ion transferring 30 polymer filling the pores of the substrate.
  2. 2
    2, The process of Claim 1 wherein the porous support comprises polypropylene, high molecular weight polyethylene, ultrahigh molecular weight polyethylene or polyvinylidene fluoride, Cft 2814701 2017-11-23
  3. 3
    The process of Claim 1 wherein the thickness of the porous support is greater than 55 microns and less than 155 microns.
  4. 4
    4 The process of Claim 1 wherein the thickness of the porous support is greater 5 than 20 microns and less than 55 microns.
  5. 5
    The process of Claim 1 wherein the at least one secondary monomer is 2sulfoethylmethacrylate or 2-acrylamide-2-methyl propane sulfonic acid or acrylic acid.
  6. 6
    6 The process of Claim 1 wherein the at least one secondary monomer is selected from the group consisting of styrene, vinyl toluene, 4-methytstyrene, t-buty! styrene, alpha- methylstyrene;methacrylic anhydride, methacrylic acid, n-vinyl-2pyrrolidone, vinyltrimethoxysilane, vinyltriethoxysilane, vinyl-tris-(215 methoxyethoxy)siiane, vinylidene chloride, vinylidene fluoride, vinylmethyldimethoxysilane, 2,2,2,-trifluoroethyl methacrylate, maleic anhydride, glycidyl methacrylate, hydroxyethylmethacrylate, methylmethacrylate, epoxycyclohexyl- Polyhedral Oligomeric Silsesquioxane, glycidyl- Polyhedral Oligomeric Silsesquioxane, methacryl Polyhedral Oligomeric Silsesquioxane, acrylo 20 Polyhedral Oligomeric Silsesquioxane, tris sulfonic acid ethyl Polyhedral Oligomeric Silsesquioxane, and Trisulfonic Acid Isobutyl Polyhedral Oligomeric Silsesquioxane.
  7. 7
    The process of Claim 1 wherein the crosslinker is divinyibenzene glycol dimethacrylaie, ethylene glycol dimethacrylate, propylene glycol dimethacrylate, 25 isobutylene glycol dimethacrylate, Octavinyl Polyhedral Oligomeric Silsesquioxane. Octavinyldimethyisilyl Polyhedral Oligomeric Silsesquioxane, Vinyl Polyhedral Oligomeric Silsesquioxane, OctaVinyl Polyhedral Oligomeric Silsesquioxane, Trisiianolethyl Polyhedral Oligomeric Silsesquioxane, Trisilanolisobutyi Polyhedral Oligomeric Silsesquioxane, Trlsilanolisooctyl Polyhedral Oligomeric Silsesquioxane, 30 Octasilane Polyhedral Oligomeric Silsesquioxane, or Octahydro Polyhedral Oligomeric Silsesquioxane.
  8. 8
    The process of Claim 1 wherein the polymerization initiator is selected from the group consisting of organic peroxides, Cft 2814701 2017-11-23 2,^-32001512,(2-imidazolin-2-yl)-propane) dihydrochloride, a,a'-azoisobutyronitrile, 2,2’-azobis(2- methylpropionaminidine) dihydrochloride, 2,2‘-azobis[2 ,(2-imidazolin-2-yIJ-propane], and 5 dimethyl 2,2- azobis(2-methyl propionate).