IP Library Granted Patent US 11,014,071
Granted Patent B1
US 11,014,071 · App. 15/777,967 · Granted May 25, 2021

Porous polymer material for bonding metal-containing ions or for purifying organic molecules

Inventors: Martin Welter (Neckargemünd, DE); Christian Meyer (Schwetzingen, DE); Kristian Lungfiel (Bickenbach, DE); Thomas Schwarz (Cologne, DE)
Assignee: instrAction GmbH
B01J20/267B01D15/08B01D15/3828B01J20/285B01J20/28021B01J20/28054B01J20/305B01J20/3282C08J3/075B01D15/362B01D15/363B01J20/28078B01J2220/62C02F1/285C02F2101/20C02F2101/30C02F2201/006C08J2300/104C08J2300/106
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Quick Facts
Patent No.
US 11,014,071
App. No.
15/777,967
Granted
May 25, 2021
Kind
B1
Abstract

A method for producing porous particles of a cross-linked polymer, and porous particles that can be produced according to the method are disclosed. The porous particles of a crosslinked hydroxy- or amino-group-containing polymer have a relatively low swelling factor. A composite material contains the porous particles dispersed in a continuous aqueous phase. The porous particles, or the composite material, are used for purifying organic molecules and for bonding metals from solutions. A filter cartridge contains the porous particles of a cross-linked polymer or the composite material.

Claims (25)

1. Method for producing porous particles from a cross-linked polymer, comprising the following steps:

(a) applying an organic polymer containing hydroxyl or amino groups onto a porous inorganic carrier material in particulate form, where the inorganic carrier material can be dissolved under aqueous-alkaline conditions at pH>10;

(b) cross-linking the organic polymer in the pores of the inorganic carrier material; and

(c) dissolving out of the inorganic carrier material to obtain the porous particles from a cross-linked organic polymer, wherein the porous particles have a maximum swelling factor in water of 300% increase, assuming 100% dry particles.

2. Method according to claim 1 , wherein the cross-linked organic polymer from step (c) is derivatized in its side groups with aliphatic or aromatic groups, which groups may also contain heteroatoms, and wherein the aliphatic or aromatic groups may also be substituted with anionic or cationic groups and groups which can be protonated or deprotonated or organic groups with characteristics of a Lewis base which have heteroatoms with free electron pairs, selected from the group consisting of N, O, P, As and S.

3. Porous particles from a cross-linked polymer obtained according to a method according to claim 1 .

4. Porous particles according to claim 3 , wherein the particles have a maximum swelling factor in water of 300% volume increase, assuming 100% dry particles.

5. Porous particles according to claim 3 , wherein the dry bulk density is in the range from 0.25 g/ml to 0.8 g/ml.

6. Composite material which contains the porous particles according to claim 3 dispersed in a continuous aqueous phase, whereby the continuous aqueous phase is embedded into a hydrogel and/or is part of a hydrogel, and/or surrounded by a water-insoluble, ion-permeable envelope.

7. Composite material according to claim 6 which has the form of particles.

8. Composite material according to claim 7 , wherein the particles have a spherical, lenticular or bacillar shape.

9. Method for producing a composite material containing porous particles dispersed in a continuous aqueous phase, comprising the following steps:

(a) preparing an aqueous solution which contains a polymer able to form a hydrogel, and an accessory agent;

(b) adding the porous particles according to claim 1 to the aqueous solution;

(c) extracting water from the aqueous solution from step (b) down to a water content of maximum 50 percent by weight with reference to the total quantity of the aqueous solution after water removal, whereby a phase separation into an aqueous phase containing the accessory agent and a phase containing the polymer able to form a hydrogel in the form of a hydrogel is carried out, whereby the hydrogel contains the porous particles; and

(d) separating the two phases to obtain the composite material.

10. Method for producing a composite material containing porous particles dispersed in a continuous aqueous phase, comprising the following steps:

(a) dispersing the porous particles according to claim 1 in an aqueous phase containing a cross-linking agent, a hydrogel precursor which can be cross-linked with a cross-linking agent, or a hydrogel precursor which can be thermally cross-linked to obtain a dispersion;

(b) forming a composite material from the dispersion obtained with (a), whereby

(b1) the dispersion which contains a cross-linking agent is, for encapsulation with a largely waster-insoluble, ion-permeable envelope, introduced into a solution which contains a gel precursor, which can be cross-linked by the cross-linking agent, of a water-insoluble, ion-permeable envelope material, or

(b2) the dispersion which contains a hydrogel precursor which can be thermally cross-linked through heat or cold is, for the formation of discrete gel elements, introduced into a liquid phase which has a temperature which is sufficiently high or low for the thermal cross-linking of the gel precursor, or

(b3) the dispersion which contains a hydrogel precursor which can be cross-linked with a cross-linking agent is introduced into a solution which contains the cross-linking agent, or the cross-linking agent is integrated into the dispersion.

11. A method for the purification of organic molecules or for the separation of metals from solutions comprising contacting a solution containing organic molecules or metals with the porous particles according to claim 3 .

12. Filter cartridge which contains porous particles according to claim 1 or a composite material which contains the porous particles.

13. A method for the purification of organic molecules or for the separation of metals from solutions comprising contacting a solution containing organic molecules or metals with a composite material containing the porous particles according to claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2018
From: WELTER, MARTIN; MEYER, CHRISTIAN; LUNGFIEL, KRISTIAN; SCHWARZ, THOMAS
To: INSTRACTION GMBH
Reel/Frame 046024/0066 →
Priority Claims (2)
DE 10 2015 015 220.3 · Nov 27, 2015 · national
EP 16176161 · Jun 24, 2016 · regional
Cited By (1)
US 12,349,676