Superabsorbent materials and methods of making the same
Provided are superabsorbent materials composed of agar, and one or more water-soluble natural polysaccharides, and dietary compositions containing such superabsorbent materials. The disclosed superabsorbent materials have various food and therapeutic applications and can be used as loading vehicles for nutrients and therapeutic agents. Also provided are methods for preparing such superabsorbent materials.
1. A superabsorbent material having a porous network structure without any chemical cross-linking, comprising agar and one or more water-soluble natural polysaccharides,
wherein the superabsorbent material has a volume expansion ratio of at least 5 times or up to 150 times in deionized water, wherein the superabsorbent material is neither expanded with a gas nor digested with an enzyme prior to or during the formation of the superabsorbent material, and
wherein the superabsorbent material is prepared by the steps comprising:
adding the agar and the one or more water-soluble natural polysaccharide to water to form a mixture;
heating the mixture to a temperature of between 80° C. and 100° C. until the one or more polysaccharides are completely dissolved;
allowing the mixture to cool to form a gel;
freezing the gel to induce cryogelation; and
drying the gel to obtain the superabsorbent material.
2. The superabsorbent material of claim 1 , wherein the one or more water-soluble natural polysaccharides are selected from the group consisting of konjac gum, carrageenan, locust bean gum, xanthan gum, tamarind seed gum, guar gum, alginate, pectin, gellan gum, chitosan, Arabic gum, a soluble starch, and a combination thereof.
3. The superabsorbent material of claim 1 , wherein upon rehydration at room temperature, the material expands in volume in less than 2 hours, less than 1.5 hours, less than 1 hour, less than 30 minutes or less than 15 minutes and maintains an expanded shape for at least 24 hours, at least 36 hours, or at least 48 hours under a neutral pH condition or a human gastric pH condition.
4. The superabsorbent material of claim 1 , wherein the material has an absorption ratio of at least 10 times or up to 200 times of its own weight in deionized water, or at least 5 times or up to 100 times of its own weight in artificial gastric juice.
5. The superabsorbent material of claim 1 , wherein the superabsorbent material has a volume expansion ratio of at least 5 times to up to 100 times in artificial gastric juice.
6. The superabsorbent material of claim 1 , wherein the one or more water-soluble natural polysaccharides comprise konjac gum and carrageenan.
7. The superabsorbent material of claim 1 , wherein the superabsorbent material comprises agar and konjac gum at a ratio of from about 1:1 to about 1:3.
8. The superabsorbent material of claim 1 , wherein the superabsorbent material comprises agar and carrageenan at a ratio of from about 1:1 to about 1:3.
9. The superabsorbent material of claim 1 , wherein the superabsorbent material comprises agar, konjac gum, and carrageenan at a ratio of 1:1:1 or at a ratio of 2:5:5.
10. The superabsorbent material of claim 1 , wherein the porous network structure is reversible in a drying and rehydration processes under a neutral pH condition or a human gastric pH condition.
11. The superabsorbent material of claim 1 , wherein the the steps further comprising pulverizing the dried gel into a powder form.
12. The superabsorbent material of claim 1 , wherein the drying step comprises directly freeze-drying the frozen gel.
13. The superabsorbent material of claim 1 , wherein the drying step comprises thawing the frozen gel and drying at a temperature of between 50° C. and 60° C.
14. The superabsorbent material of claim 1 , wherein the drying step comprises:
thawing the frozen gel;
filtering the thawed gel to obtain a filter cake; and
drying the filter cake.