B01J20/3234

Cation exchange materials for dialysis systems

A sorbent cartridge device includes an ion-exchange material containing zirconium phosphate and no more than about 0.1 mg of leachable phosphate ions per about 1 g of the ion-exchange material. In one example, the cartridge also includes a phosphate-adsorbing material containing zirconium oxide. In this example, the weight ratio between zirconium phosphate and zirconium oxide in the cartridge is from about 10:1 to about 40:1. The zirconium phosphate may be alkaline zirconium phosphate prepared by a process including the following steps: (i) drying acid zirconium phosphate to obtain a dry acid zirconium phosphate; (ii) combining the dry acid zirconium phosphate with an aqueous solution to obtain an aqueous slurry; and (iii) combining the slurry with an alkali hydroxide to obtain the alkaline zirconium phosphate. During step (ii), any free phosphate ions in the dry acid zirconium phosphate leach out into the aqueous phase of the slurry.

ANIMAL LITTERS WITH REDUCED DUSTING
20220142115 · 2022-05-12 · ·

An animal litter composition having enhanced dust reduction properties, and a related method, are disclosed. The animal litter can include a plurality of particles a liquid adsorbing material, such as diatomaceous earth. The animal litter can also include a dust reducing composition, which composition particularly can comprise polyvinyl alcohol and nanoparticulate silica.

Method for preparing highly porous polymer particles for diagnostic applications

A method of preparing a magnetic particle having a polymer matrix (P) and at least one magnetic core (M), preferably at least two magnetic cores (M), wherein the polymer matrix (P) comprises at least one hypercrosslinked polymer, wherein the method comprises (i) providing at least one magnetic core (M), preferably at least two magnetic cores (M), (ii) providing polymer precursor molecules, (iii) polymerizing the polymer precursor molecules according to (ii) in the presence of the at least one magnetic core (M), thereby forming a particle comprising the at least one magnetic core (M) is disclosed. Further, particles obtained or obtainable by this method as well as to the use of these particles are disclosed. In a further aspect, a method for determining at least one analyte in a fluid sample having the step of contacting of the magnetic particle with a fluid sample having or suspected of having the at least one analyte is disclosed.

ADSORPTION DEVICE FOR COMPRESSED GAS

An adsorption device for compressed gas or a non-compressed gas, is provided with a vessel with an inlet for the supply of a compressed gas or a non-compressed gas to be treated, and an outlet for treated gas and an adsorption element is affixed in the vessel. The adsorption element extends along the flow direction of the compressed gas or the non-compressed gas to be treated, between the inlet and the outlet. The adsorption element has a monolithic supporting structure that is at least partially provided with a coating that contains an adsorbent.

SURFACE MOLECULARLY IMPRINTED MAGNETIC NANOMETER MATERIAL OF SALVIANOLIC ACID A, PREPARATION METHOD THEREFOR AND USE THEREOF
20230241583 · 2023-08-03 ·

Providing a surface molecularly imprinted magnetic nanomaterial of salvianolic acid A, a preparation method therefor and use thereof. The nanomaterial is obtained by using ferroferric oxide nanoparticles as a core, salvianolic acid A as a template molecule, 4-acryloyloxy phenylboronic acid, vinyl imidazole and methacryloylpropyl trimethyl ammonium chloride as copolymerization functional monomers, bismethylene acrylamide as a cross-linking agent, and azoamidine initiator V50 as an initiator, synthesizing surface imprinted magnetic material containing template molecules by surface polymerization, and finally eluting the template molecule with 0.1 M HCl. It is a spherical particle with a core-shell structure of about 250 nm, with positive charge on the surface and strong hydrophilicity, which can be recycled. Moreover, this magnetic material is easy to be separated by a magnet. The surface molecularly imprinted magnetic nanomaterial prepared by the present application can be used for rapid, large-capacity and high-selectivity separation and enrichment of salvianolic acid A.

MICROCRYSTALLINE CELLULOSE PARTICLE SUPPORTED SOL-GEL SORBENTS

Solid phase extraction (SPE) sorbents and liquid chromatography (LC) stationary phases are provided, as well as methods of fabricating the same. The SPE sorbents and LC stationary phases can use microcrystalline cellulose particles as the substrate and sol-gel sorbent coating technology as the polymer/sorbent immobilization technology. The SPE sorbents and LC stationary phases are stable in a pH range of 1-13 and at a temperature of up to 350 ° C.

Sorbent compositions having amorphous halogen species for the sequestration of contaminants

Methods for the manufacture of sorbent compositions, sorbent compositions and methods for using the sorbent compositions. The methods include the utilization of an acidic halogen solution as a source of a halogen species that is dispersed on a solid sorbent. The use of the acidic halogen solution results in a highly active halogen species that demonstrates improved efficacy for the removal of heavy metal(s) from a flue gas. The sorbent composition includes a substantially amorphous halogen species associated with a solid sorbent such as powdered activated carbon (PAC).

SELENIUM NANOMATERIALS AND METHODS OF MAKING AND USING SAME

Articles including a solid porous material having a selenium nanomaterial bound to a surface of and within the solid porous material. The article may be a include no polymeric stabilizer or proteinaceous stabilizer. The solid porous material may be a sponge, a film, a fabric, a non-woven material, or a metal-organic framework (MOF), or a combination thereof. The article may be produced by treating a solid porous material with an aqueous selenous acid solution and heating the solid porous material to form the selenium nanomaterial on the surface of and within the solid porous material.

SUPERFICIALLY POROUS MATERIALS COMPRISING A COATED CORE HAVING NARROW PARTICLE SIZE DISTRIBUTION; PROCESS FOR THE PREPARATION THEREOF; AND USE THEREOF FOR CHROMATOGRAPHIC SEPARATIONS

The present invention provides novel chromatographic materials, e.g., for chromatographic separations, processes for its preparation and separations devices containing the chromatographic material; separations devices, chromatographic columns and kits comprising the same; and methods for the preparation thereof. The chromatographic materials of the invention are chromatographic materials comprising having a narrow particle size distribution.

Methods for the treatment of flue gas streams using sorbent compositions with reduced auto-ignition properties

An activated carbon sorbent composition comprising activated carbon and a passivation agent, wherein the activated carbon sorbent composition exhibits reduced self-heating or auto-ignition properties as compared to the activated carbon. The activated carbon sorbent composition may be utilized to sequester contaminants such as mercury from a flue gas stream. The passivation agent includes a sulfur species, and may be a sulfur oxide compound, a sulfide compound, or an organic sulfur compound. Methods for the manufacture of the activated carbon sorbent composition and for the sequestration of contaminants in a flue gas stream using the composition are also disclosed.