Composition for producing hydrogen rich water and other products

JP2025148473A5Pending Publication Date: 2026-02-18H2 WATER TECH LTD
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Patent Information

Application Number
JP2025116818
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2016-07-15
Filing Date
2025-07-10
Publication Date
2026-02-18

AI Technical Summary

Technical Problem

Existing methods for producing hydrogen-enriched water result in low H2 concentrations and rapid decline due to equipment inefficiency and alkaline solutions, failing to maintain sufficient hydrogen levels for consumer products.

Method used

Compositions comprising magnesium metal, a water-soluble acid, and a binder, designed to disintegrate quickly and maintain a pH below 7, producing hydrogen-enriched water with concentrations up to 0.5 mM in various volumes.

Benefits of technology

Achieves significantly higher supersaturated hydrogen levels in open containers, maintaining acidic pH for extended periods, overcoming equipment limitations and ensuring stable hydrogen production.

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Abstract

To provide compositions for producing hydrogen rich water, nutraceuticals, cosmetics, pharmaceuticals, and other products.SOLUTION: In one embodiment, the present invention provides a composition, e.g., a tablet, including magnesium metal, at least one water-soluble acid, and a binding agent. The magnesium metal and at least one water-soluble acid may be present in amounts sufficient to maintain a pH of less than 7, e.g., at a specific time period after reaction, and a concentration of at least 0.5 mM H2 after reaction in 50 mL water in a container, e.g., a sealed or an open container, e.g., at least 0.5 mM H2 after reaction in 100 mL water or at least 0.5 mM H2 after reaction in 500 mL water. The composition may also include a lubricant.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] Background of the Invention Molecular hydrogen has been shown to have potential therapeutic applications for a variety of diseases and disorders. For example, H2 is known to have applications as a method for reducing skin wrinkles (J. Photochem. Photobiol. B. 2012; 106:24-33), a treatment for atopic dermatitis (Evid. Based Complement. Alternat. Med. 2013; 2013:538-673), and as a post-treatment regimen for radiation therapy (Biochem. J., 2012, 442(1); 49-56). Hydrogen-enriched water represents one method by which molecular hydrogen can be administered to a subject. Common electrolysis and base metal methods for producing hydrogen-enriched water typically result in alkaline solutions with low H2 concentrations.

[0002] Producing ready-to-drink containers of H2 (and therefore hydrogen-enriched water) presents technical challenges. The equipment often used to saturate water with H2 gas in sufficient quantities is expensive and largely ineffective. When utilized, H2 can be dissolved at a maximum concentration of 0.8 mM or 1.6 ppm under SATP conditions, as per Henry's Law. To maintain this concentration of H2 for any period of time, the container cannot have a headspace, or the beverage must be supersaturated to allow H2 diffusion into the headspace to reach equilibrium. Even in the absence of a headspace, as seen in other commercial products on the market, the level of H2 in the container quickly drops to about 1 ppm and continues to decline toward 0 ppm, depending on the storage technique, headspace level, and initial concentration. Some products retain very little H2 by the time they reach the consumer. For example, the Japanese government recently evaluated consumer products containing H2 and found that most of them did not contain detectable levels of H2 (http: / / www.kokusen.go.jp / news / data / n-20161215_2.html).

[0003] Therefore, there is a need for new compositions for producing hydrogen-rich water that maximize dissolved hydrogen concentration. Summary of the Invention [Means for solving the problem]

[0004] SUMMARY OF THE INVENTION The present invention provides compositions for producing hydrogen-enriched water, dietary supplements, cosmetics, pharmaceuticals, and other products. In one embodiment, the present invention provides a composition, e.g., a tablet, comprising magnesium metal, at least one water-soluble acid, and a binder. The magnesium metal and at least one water-soluble acid may be present in an amount sufficient to maintain a pH of less than 7, for example, after a certain period of reaction and in a container, e.g., a sealed or open container, after reaction in 50 mL of water, e.g., at least 0.5 mM H2 after reaction in 100 mL of water, or at least 0.5 mM H2 after reaction in 500 mL of water. The composition may also include a lubricant.

[0005] In another aspect, the present invention provides a composition containing magnesium metal, at least one water-soluble acid, and a binder, wherein the at least one water-soluble acid has a solubility in water of at least 0.01 g / mL. In some embodiments, the composition disintegrates in less than 5 minutes, specifically less than 2 minutes. In some embodiments, the composition produces at least 0.5 mM H2 after contact with 50 mL of water in a container at atmospheric pressure and room temperature, e.g., at least 0.5 mM H2 after reaction in 100 mL of water, or at least 0.5 mM H2 after reaction in 500 mL of water. The composition may also include a lubricant.

[0006] In some embodiments of the above aspects, the composition disintegrates in less than 5 minutes, e.g., less than 2 minutes. In some embodiments, the disintegrated composition maintains a pH of less than 7 after 10 minutes of contact with water and produces at least 0.5 mM H2 after contact with 50 mL of water in a container at atmospheric pressure and room temperature, e.g., at least 0.5 mM H2 after reaction in 100 mL of water, or at least 0.5 mM H2 after reaction in 500 mL of water.

[0007] In another aspect, the present invention provides a composition comprising magnesium metal, at least one acid, and a binder, wherein the composition disintegrates in less than 5 minutes, maintains a pH of less than 7 for 10 minutes after disintegration, and maintains at least 0.5 mM H2 after contact with 50 mL of water in a container at atmospheric pressure and room temperature, e.g., at least 0.5 mM H2 after reaction in 100 mL of water, or at least 0.5 mM H2 after reaction in 500 mL of water.

[0008] In some embodiments of any of the above aspects, the composition passes a formulation test for friability. In some embodiments, the pH of the water is less than 7 10, 15, 20, 30, or 45 minutes after the composition is contacted with water. In some embodiments, the pH of the water is less than 7 at least 1 hour after the composition is contacted with water. In some embodiments, the container is open to the atmosphere. In some embodiments, the container is sealed. In some embodiments, when the container is sealed, the pH remains less than 7 7 days after contact with water. In some embodiments, as the composition disintegrates in water, magnesium in the composition reacts to produce H2, i.e., the rate of disintegration and the rate of magnesium consumption are substantially the same.

[0009] The amount of magnesium metal is, for example, 5-500 mg, e.g., 5-100 mg. The amount of acid is, for example, 30-4000 mg, e.g., 200-400 mg. In some embodiments, the magnesium metal and acid are present in an amount sufficient to maintain a pH of 4-6 and / or to produce a concentration of at least 2 mM H2 in 50 mL of water in a container, e.g., a sealed or open container, e.g., at least 2 mM H2 after reaction in 100 mL of water, or at least 2 mM H2 after reaction in 500 mL of water. In some embodiments, the magnesium metal comprises flakes, e.g., -325 mesh flakes. In other embodiments, the magnesium metal is ground, e.g., to 200 mesh or smaller. In some embodiments, at least one acid is a food acid. The food acid may be, for example, maleic acid, succinic acid, malic acid, fumaric acid, formic acid, citric acid, ascorbic acid, oxalic acid, tartaric acid, or a combination thereof. Exemplary food acids are tartaric acid and malic acid. In some embodiments, the acid is a cosmetically or pharmaceutically acceptable acid. Cosmetically or pharmaceutically acceptable acids include, for example, acetic acid, adipic acid, alginic acid, aspartic acid, benzenesulfonic acid, benzoic acid, boric acid, butyric acid, camphoric acid, camphorsulfonic acid, cyclopentanepropionic acid, digluconic acid, dodecylsulfuric acid, ethanesulfonic acid, glucoheptonic acid, glycerophosphoric acid, hemisulfuric acid, heptonic acid, hexanoic acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, 2-hydroxyethanesulfonic acid, lactobionic acid, lactic acid, lauric acid, lauryl sulfuric acid, malonic acid, methanesulfonic acid, 2-naphthalenesulfonic acid, nicotinic acid, nitric acid, oleic acid, palmitic acid, pamoic acid, pectinic acid, persulfuric acid, 3-phenylpropionic acid, phosphoric acid, picric acid, pivalic acid, propionic acid, stearic acid, sulfuric acid, tartaric acid, thiocyanic acid, toluenesulfonic acid, undecanoic acid, valeric acid, or combinations thereof. Other acids include acetylsalicylic acid and 5-aminosalicylic acid. Examples of binders are mannitol, xylitol, maltose, dextrose, and lactose. Exemplary binders are dextrose and lactose.In some embodiments, when the acid is tartaric acid, citric acid, or ascorbic acid, the amount of magnesium is greater than 20 mg, e.g., at least 50 mg, or when the acid is acetylsalicylic acid and 5-aminosalicylic acid, the amount of magnesium is greater than 20 mg, e.g., at least 50 mg.

[0010] The composition may further comprise nutritional supplements, such as magnesium salts, sweeteners, flavorings, colorings, fragrances, essential oils, water-soluble lubricants, or polysaccharides. Exemplary polysaccharides include cellulose and its derivatives, such as methylcellulose or hydroxypropylmethylcellulose, starch, apple powder, lemon powder, lime powder, grapefruit powder, psyllium husk, and pectin. Exemplary lubricants include sodium stearyl fumarate and stearic acid, specifically sodium stearyl fumarate.

[0011] The invention also provides a kit comprising a composition of the invention and a sealable container capable of holding 100 mL-2 L of water, for example, 150-750 mL of water. In one embodiment, the container is double-walled.

[0012] The present invention further provides a method for producing hydrogen-enriched water by contacting a composition of the present invention with water in a container, whereby the composition disintegrates and the magnesium metal and at least one acid react to produce H in the water, e.g., at a concentration of at least 0.5 mM H, and maintain a pH of less than 7 at atmospheric pressure and room temperature 10 minutes after disintegration. In some embodiments, the water comprises a fruit juice, e.g., a juice containing pectin. In other embodiments, the concentration of H is at least 1 mM. In some embodiments, a pH of less than 7 exists 1 hour after disintegration.

[0013] The present invention further provides methods of administering hydrogen to a subject by providing the subject with a composition of the present invention, e.g., a composition containing hydrogen produced from a tablet. In some embodiments, the hydrogen-containing composition is a dietary supplement or a topical formulation. In one embodiment, the dietary supplement is a beverage.

[0014] The present invention further provides hydrogen-enriched compositions comprising hydrogen gas dissolved in a carrier at a concentration of at least 0.5 mM, e.g., at a pH of less than 7. In some embodiments, the carrier is food, cosmetic, or pharmaceutical grade. In some embodiments, the carrier is an aqueous liquid, cream, lotion, foam, paste, or gel. In some embodiments, the composition is a beverage. In some embodiments, the maximum concentration of hydrogen is 20 mM. In some embodiments, the composition has a pH of 4-6. In one embodiment, the pH is 4.6 or less. In some embodiments, the composition contains a nutritional supplement. In one embodiment, the nutritional supplement contains magnesium ions, potassium ions, or calcium ions. In some embodiments, the composition contains a sweetener, a flavoring agent, a coloring agent, a fragrance, an essential oil, or a polysaccharide. In some embodiments, the composition contains a binder or a water-soluble lubricant.

[0015] The present invention further provides a composition for producing acidic hydrogen-rich water. In one embodiment, the present invention provides a composition, e.g., a tablet, comprising magnesium metal, a food acid, and a binder. Generally, the magnesium metal and food acid are present in amounts sufficient to produce a pH of less than 7 and at least 0.5 mM H2 after reaction in 500 mL of water in a sealed container. The present invention also provides a kit comprising the composition, e.g., a tablet, of the present invention and a sealable container capable of holding 200 mL-2 L of water, e.g., 250-750 mL of water. In some embodiments, the container is double-walled. The present invention further provides a method for producing hydrogen-rich water by contacting the composition, e.g., a tablet, of the present invention with water in a sealable container, whereupon the composition, e.g., the tablet, disintegrates and the magnesium metal and acid react to produce H2 in the water at a concentration of at least 0.5 mM H2 and a pH of less than 7, e.g., pH 4-6. In some embodiments, the water comprises fruit juice, e.g., a juice containing pectin. In other embodiments, the concentration of H2 is at least 1 mM. The amount of magnesium metal is, for example, 5-100 mg. In some embodiments, the magnesium metal and food acid are present in an amount sufficient to produce a pH of 4-6 and / or to produce at least 2 mM H2 in 500 mL of water in a sealed container. In some embodiments, the magnesium metal is in powder form, for example, 200 mesh or smaller. In other embodiments, the magnesium metal comprises flakes, for example, -325 mesh flakes. The food acid may be selected from the group consisting of, for example, maleic acid, succinic acid, malic acid, fumaric acid, formic acid, citric acid, ascorbic acid, and oxalic acid. Examples of binders include mannitol, xylitol, maltose, and lactose. The composition may further comprise a vitamin, a mineral, for example, a magnesium salt, a sweetener, a flavoring, a water-soluble lubricant, or a polysaccharide. Exemplary polysaccharides include methylcellulose, starch, apple powder, lemon powder, lime powder, grapefruit powder, psyllium husk, and pectin.

[0016] definition As used herein, the term "cosmetic" refers to compositions applied to all or part of the human body, e.g., the hands, face, arms, or legs, to cleanse, beautify, promote attractiveness, or alter appearance.

[0017] As used herein, the term "cosmetically acceptable" refers to a composition having ingredients that are acceptable for topical human use.

[0018] As used herein, the term "dietary supplement" refers to a composition having at least ingredients suitable for human consumption. Pharmaceutical-grade ingredients may optionally be used, for example, as described in "Remington: The Science and Practice of Pharmacy" (22nd ed.), ed. L.V. Allen, Jr., 2013, Pharmaceutical Press, Philadelphia, PA."

[0019] As used herein, the term "passes the formulation test for friability" refers to a composition that loses a maximum of 1% mass after 100 revolutions in the rotating drum of a friability tester, e.g., from Copley Scientific.

[0020] As used herein, the term "pharmaceutically acceptable" refers to a composition having ingredients that are subject to the U.S. Food and Drug Administration's Pharmaceutical Purity Standards and are further regulated by standards set by the United States Pharmacopeia, which standard is 99.9% purity for a particular ingredient.

[0021] As used herein, the term "subject" refers to any animal that can be treated topically, orally, by inhalation, or intravenously with a composition containing H or used to generate H. Animals include fish, reptiles, birds (e.g., chickens, turkeys), and mammals. Mammals that can be treated with the compositions of the present invention include primates (e.g., humans, apes), livestock (e.g., cows, pigs, sheep), pack animals (e.g., oxen, horses, llamas), and companion animals (e.g., dogs, cats). DETAILED DESCRIPTION OF THE INVENTION

[0022] Detailed Description of the Invention The present invention provides compositions, such as tablets, that disintegrate in water to produce hydrogen-enriched water. By using the compositions of the present invention, for example, in ready-to-drink containers, it is possible to achieve significantly higher supersaturated levels of H than can be achieved by adding pure H gas. In contrast to conventional compositions, an advantage of the present invention is that hydrogen-enriched compositions containing supersaturated amounts of H can be produced in open containers, i.e., at atmospheric pressure. Additionally, the present invention provides compositions that pass formulation friability tests while still producing high levels of H. A further advantage of the present invention is that the compositions can react quickly, for example, in less than two minutes, to produce usable, e.g., drinkable, hydrogen-enriched products with significantly higher H levels than conventional compositions.

[0023] The composition contains magnesium metal, i.e., elemental magnesium, an acid, and typically a binder and / or lubricant. In water or a water-containing carrier, the magnesium metal and the acid react to produce H2 and magnesium ions, which dissolve in the water. An advantage of the present invention is that the composition contains sufficient acid to maintain an acidic pH during H2 production. If insufficient acid is used, the pH of the reaction will increase, for example, until the solution becomes alkaline, and the reaction will stop before high levels of H2 are reached. Without wishing to be bound by theory, at high pH, ​​H2 production will stop due to passivation by hydroxides and carbonates, which act as ligands with unreacted magnesium particles. When this occurs, less magnesium metal reacts, thereby reducing the available H2 produced and leaving unacceptable levels of residual solids from the composition behind in the container. The use of an acid is also advantageous because a low pH, e.g., a pH of 4.6 or less, helps reduce microbial growth and therefore the potential for contamination. Thus, in certain embodiments, the present invention provides a composition that produces a hydrogen-enriched product with an acidic pH during use or storage.

[0024] magnesium metal Each composition contains a sufficient mass of magnesium to generate a sufficient amount of H in the amount of water to which it is added. Thus, in certain embodiments, the composition contains a sufficient mass of magnesium to generate at least 0.1 mmol of H, e.g., at least 0.5 mmol, 1 mmol, 2 mmol, 3 mmol, 5 mmol, or 10 mmol of H, e.g., at least 50, 75, 100, 125, 150, 175, 200, 225, 250, 500, 750, 1000, 1500, or 2000 mL of a suitable carrier, e.g., water. Suitable masses of magnesium metal include 5-1000 mg, e.g., 5-500 mg, 5-450 mg, 10-400 mg, 20-350 mg, 30-300 mg, 40-250 mg, 50-200 mg, 60-100 mg, or about 70 mg or 80 mg of magnesium.

[0025] The physical form of the magnesium, such as its size and shape, can be used to control the rate of reaction. The particles may be spherical, spheroidal, granular, or flaky. Smaller particles and particles with a higher surface area to volume ratio react at a faster rate. A mixture of different sizes may be used. Flaked magnesium has a higher surface area to volume ratio than granular magnesium. In some embodiments, -325 mesh flaked magnesium may be used in the composition. Alternatively, or in combination, magnesium with a larger size or a smaller surface area to volume ratio compared to flaked magnesium may be used. For example, -200 mesh magnesium may be used. In other embodiments, +100, -100, +200, -200 (e.g., -200, +325), -325, or smaller mesh magnesium is used. In one embodiment, magnesium is supplied in two sizes, eg, -200 and -325, with the smaller size making up 20-50% of the total and the larger size making up the remainder.

[0026] acid Any water-soluble acid may be used in the present invention. The acid may be edible or may be cosmetic or pharmaceutical grade. Examples of edible acids include, but are not limited to, maleic acid, succinic acid, malic acid, fumaric acid, formic acid, citric acid, ascorbic acid, oxalic acid, tartaric acid, and combinations thereof. Examples of cosmetic or pharmaceutical grade acids include acetic acid, adipic acid, alginic acid, aspartic acid, benzenesulfonic acid, benzoic acid, boric acid, butyric acid, camphoric acid, camphorsulfonic acid, cyclopentanepropionic acid, digluconic acid, dodecylsulfuric acid, ethanesulfonic acid, glucoheptonic acid, glycerophosphoric acid, hemisulfuric acid, heptonic acid, hexanoic acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, 2-hydroxyethanesulfonic acid, lactobionic acid, lactic acid, lauric acid, lauryl sulfuric acid, and malonic acid. Acids include methanesulfonic acid, 2-naphthalenesulfonic acid, nicotinic acid, nitric acid, oleic acid, palmitic acid, pamoic acid, pectinic acid, persulfuric acid, 3-phenylpropionic acid, phosphoric acid, picric acid, pivalic acid, propionic acid, stearic acid, sulfuric acid, tartaric acid, thiocyanic acid, toluenesulfonic acid, undecanoic acid, valeric acid, their stereoisomers, all forms of alpha acids (e.g., α-luprilic acid), polycarboxylic acids, Lewis acids, such as AlCl3, and combinations thereof. Other acids include acetylsalicylic acid and 5-aminosalicylic acid. The acid will react with magnesium metal when the composition is placed in water, optionally in an amount that maintains a pH below 7. Preferably, the amount of acid selected is sufficient to maintain a pH below 6, e.g., 4-6, for the duration of a typical beverage intake, e.g., at least 30 minutes or 1 hour. In some embodiments, the number of moles of acid protons in the acid is at least 10, 20, 30, 40, 50, 75, or 100% greater than the number of moles of magnesium metal present. Suitable masses of acid include 30-4000 mg, e.g., 100-1000 mg, 50-900 mg, 100-800 mg, 150-700 mg, 200-600 mg, 250-500 mg, 300-400 mg, or about 340 mg of acid. An exemplary food acid is malic acid. Another exemplary food acid for use in the compositions of the present invention is tartaric acid.Tartaric acid is highly water-soluble, with a solubility of 0.125 g / mL in water. Acids with a solubility of about 0.01-1 g / mL, for example, about 0.02-0.9 g / mL, about 0.03-0.8 g / mL, about 0.04-0.7 g / mL, about 0.05-0.6 g / mL, about 0.06-0.5 g / mL, about 0.07-0.4 g / mL, about 0.08-0.3 g / mL, about 0.09-0.2 g / mL, about 0.1-0.2 g / mL, about 0.11-0.5 g / mL, or about 0.12-0.3 g / mL, are suitable for use in the compositions of the present invention. When highly water-soluble acids are used in the compositions of the present invention, the compositions can rapidly disintegrate upon contact with water, resulting in a more complete reaction with, for example, magnesium. This fast dissolution has the benefit of maintaining the pH below 7 for a timescale consistent with beverage consumption, e.g., 1-2 hours. Other such acids, both edible and cosmetic and / or pharmaceutical grade, are known in the art.

[0027] The physical form of the acid, such as its size and shape, can be used to control the rate of reaction. For example, acids that are solid at room temperature, such as malic acid or tartaric acid, can be processed to control the size of the acid particles used to produce the compositions of the present invention. Smaller particles and particles with a larger surface area-to-volume ratio react at a faster rate. Milled acid particles may be used in a variety of mesh sizes, e.g., 40-2500 mesh. Without being bound by theory, it is believed that the rate of dissolution of the composition is linearly dependent on mesh size. Compositions of the present invention made using larger acid particles, e.g., 40-60 mesh, dissolve more slowly than those made using finer acid particles, e.g., 120-2500 mesh. Mixtures of acid particles of various sizes may also be used. Acid particles of controllable size may be produced by a number of different techniques, including, but not limited to, micronization, ball milling, or tumbling. Other methods of producing acid particles of controllable size are known in the art.

[0028] Binder Any binder that can be disintegrated in water may be used. Examples of binders include sugars such as maltose, dextrose, and lactose, and sugar alcohols such as mannitol and xylitol. Exemplary binders for the compositions of the present invention include lactose and dextrose. Other binders for compositions are known in the art. The amount of binder is, for example, 10-50%, e.g., 20-30%, by weight of the composition. The compositions of the present invention may contain a single binder, such as lactose, or may be made from a combination of two or more binders to control the physical properties of the composition.

[0029] Binders may be edible or otherwise cosmetic or pharmaceutical grade, as known in the art, e.g., Remington (Remington: The Science and Practice of Pharmacy, (22nd ed.) ed. L.V. Allen, Jr., 2013, Pharmaceutical Press, Philadelphia, PA).

[0030] Additional Components The composition may also contain other ingredients, such as nutritional supplements, sweeteners, flavorings, colorings, fragrances, essential oils, lubricants, polysaccharides, or coatings. The composition of the present invention may contain nutritional supplements, such as vitamins, minerals, and / or herbal extracts. For example, the composition may contain magnesium, potassium, or calcium salts. Suitable sweeteners are known in the art, such as sucrose, mannose, sucralose, aspartame, saccharin, stevia, monk fruit extract, and acesulfame K. The composition may also contain any food-grade coloring agent, such as FD&C dyes, and / or flavoring agents, such as fruit flavorings. The composition may further contain essential oils, such as grapeseed oil, wintergreen oil, and lavender oil. Other essential oils are known in the art. The composition may further contain a fragrance, such as eucalyptus. The composition may also contain polysaccharides, such as pectin, psyllium fiber, cellulose, and its derivatives, such as methylcellulose or hydroxypropylmethylcellulose, various starches, apple powder, lemon powder, lime powder, or grapefruit powder. Polysaccharides may increase the amount of H2 retained after the reaction. The composition may further contain a water-soluble lubricant, such as micronized sodium stearyl fumarate or finely divided stearic acid, e.g., 5 micrometers. The composition may also have a water-permeable coating, such as a soluble surfactant, to control the rate at which the composition dissolves. The soluble surfactant coating may be a triblock copolymer, e.g., a poloxamer, e.g., poloxamer 407, or a nonionic polymeric surfactant suitable for pharmaceutical use, e.g., a glucoside. For example, the composition may have a coating that dissolves in less than 5 minutes, e.g., less than 1 minute, to allow the user to seal the container before the composition begins to disintegrate and generate H2.

[0031] Previous attempts to produce effervescent compositions, such as tablets, using typical lubricants, such as sodium lauryl sulfate and sodium stearyl fumarate, as described in U.S. Patent Application Publication No. 2016 / 0113865, have shown that they have been unable to produce tablets that disintegrate quickly.This was due to the use of a larger amount of lubricant than required to form the tablet.Using a large amount of unrefined lubricant slowed the tablet's disintegration time, which in turn caused excessive undissolved residue in the container and an unpleasant taste.In contrast, the composition of the present invention can use much less lubricant, resulting in a faster reaction rate, a satisfactory amount of residue, and a pleasant taste.

[0032] Form of composition The composition may be formed into tablets. The tablets may be of any suitable shape. For example, the tablets may be discoid, spherical, or oval. A single tablet will typically contain the amount of magnesium and acid needed to generate the desired amount of H2 in a given volume, e.g., 50, 150, or 500 mL of water. However, a combination of multiple smaller tablets may be used. For example, a tablet may be sized to provide sufficient H2 in 250 mL, and multiple tablets may be used for larger volumes. Because the reaction between magnesium metal and acid is activated by water, the compositions of the present invention are typically stored in water-resistant packaging, such as foil or plastic. The tablet components will also typically be non-hygroscopic, although hygroscopic components may be used if the tablets are packaged dry in a waterproof container or wrapper. Tablets may be formed by methods known in the art.

[0033] When forming the compositions of the present invention into tablets, a consideration is the physical properties of the tablet, such as friability. Friability is defined as the tendency of a tablet to chip, crumble, or break after compression or other handling. Tablet friability is assessed using a rotating drum and measuring the percent weight loss of the tablet after rolling around the drum for a fixed number of drum revolutions. For a tablet to successfully pass the friability test, the tablet's weight can only decrease by 1% after 100 revolutions in the rotating drum. In the compositions of the present invention, friability is controlled by the type and particle size of the acid used in the composition, the type and particle size of the binder, the type and particle size of the lubricant, and the pressure with which the tablet is compressed in the die. The use of finer mesh particles typically results in very brittle tablets. As a result, tablets made with fine mesh particles are often made under higher pressure to ensure they do not break apart. This has the effect of making the tablet very hard, reducing the speed at which the tablet can disintegrate when contacted with water. Thus, fine mesh acid tablets can be made with highly water soluble acids such as tartaric acid to support the hydrogen generation reaction.

[0034] Other forms of the composition may also be used, for example, the composition may be provided in powder form, for example inside a water-soluble capsule or water-permeable bag, or small or large beads, e.g., a bath bomb, or a film.

[0035] The dissolution time of the composition, and therefore the measured concentration of H2, is controlled by the weight percent of the binder, the weight percent and type of lubricant, the acid to magnesium ratio, the physical properties of both the magnesium and the acid, such as mesh size, and the physical conditions the composition is subjected to. The compositions of the present invention will typically disintegrate upon contact with water in a container in less than 5 minutes, e.g., less than 4 minutes, less than 3 minutes, less than 2 minutes, or less than 1 minute.

[0036] The temperature of the water in which the composition is placed affects how quickly the composition disintegrates. Hot water causes the composition to disintegrate quickly but does not retain high concentrations of hydrogen gas. Colder water increases the solubility of hydrogen in water but does not cause the composition to disintegrate as quickly. Suitable temperatures for hydrogen production from the compositions of the present invention are about room temperature, e.g., 15°C-25°C, e.g., 15°C, 16°C, 17°C, 18°C, 19°C, 20°C, 21°C, 22°C, 23°C, 24°C, or 25°C, e.g., 59°F-77°F, e.g., 59°F, 60°F, 61°F, 62°F, 63°F, 64°F, 65°F, 66°F, 67°F, 68°F, 69°F, 70°F, 71°F, 72°F, 73°F, 74°F, 75°F, 76°F, or 77°F.

[0037] The composition will maintain an acidic hydrogen-enriched product having a pH of less than 7, e.g., 4-6, for at least a period of time after contact with water. The acidic pH may be maintained over the course of a typical timescale for use of a hydrogen-enriched product, e.g., 10 minutes after the composition contacts water. For example, the compositions of the present invention may maintain an acidic pH for at least 5 minutes, e.g., 5-300 minutes, 10-250 minutes, 15-200 minutes, 20-150 minutes, 25-120 minutes, 30-100 minutes, 50-90 minutes, e.g., at least 5 minutes, at least 10 minutes, at least 15 minutes, at least 20 minutes, at least 25 minutes, at least 30 minutes, at least 35 minutes, at least 40 minutes, at least 45 minutes, at least 50 minutes, at least 55 minutes, at least 60 minutes, at least 70 minutes, at least 80 minutes, at least 90 minutes, at least 100 minutes, at least The composition may maintain a pH of less than 7 for at least 110 minutes, at least 120 minutes, at least 130 minutes, at least 140 minutes, at least 150 minutes, at least 160 minutes, at least 170 minutes, at least 180 minutes, at least 190 minutes, at least 200 minutes, at least 250 minutes, or at least 300 minutes, e.g., at least 0.5 hours, at least 1 hour, at least 1.5 hours, at least 2 hours, at least 2.5 hours, at least 3 hours, at least 3.5 hours, at least 4 hours, at least 4.5 hours, or at least 5 hours. The composition may also maintain a pH of less than 7 for extended periods, e.g., 1 day, 7 days, 30 days, or 6 months after contacting the composition with water. Furthermore, after this time frame, the pH of the hydrogen-enriched product may become alkaline, e.g., greater than 7.

[0038] For compositions designed for use as a cosmetic additive in showers or baths, the rate of tablet dissolution is an important consideration. The composition must dissolve slowly enough in water to produce consistent levels of H2 over the duration of the shower or bath. The thermodynamics of the dissolution reaction are an additional constraint, as the reaction is exothermic and produces small amounts of magnesium hydroxide. If the reaction proceeds too quickly, the resulting bath temperature may become too hot or too much magnesium hydroxide may be produced, both of which effects can be harmful to the skin. The addition of polysaccharides to the composition has been shown to affect the dissolution rate while maximizing H2 retention. The added polysaccharide can be a fibrous polysaccharide, such as cellulose and its derivatives, such as hydroxypropyl methylcellulose (HPMC, also known as hypromellose). Alternatively or additionally, the addition of a soluble surfactant, such as a triblock copolymer (e.g., poloxamer 407), can be used to slow tablet dissolution, ensuring sufficient magnesium consumption and maximizing the length of time H2 is dissolved in water.

[0039] Hydrogen-enriched liquids for use as cosmetics or beauty sprays can have a higher acid content, and the resulting compositions can take advantage of skin's naturally occurring pH of 4.5-5.2 (Lambers et al., Int. J. Cosmet. Sci., 2006, 28, 359-370) to further enhance H2 concentrations. H2 has been shown to provide numerous benefits to the skin, and using this beauty spray as a cleanser to return skin to its natural pH may provide additional health benefits.

[0040] Carrier The compositions of the present invention, such as tablets, are used by contacting them with a carrier such as water or other aqueous liquid.Water can be pure, for example, deionized, or can contain other dissolved ions, for example, spring water or tap water.Water can also contain other components, for example, water can be or contain fruit juice, or can contain other dissolved gases, for example, carbonated water, or can contain dissolved solids, such as table sugar or salt.An exemplary fruit juice is lemon juice.

[0041] The volume of the carrier is selected based on the application to be enriched with hydrogen. When the composition of the present invention is used to produce a beverage, the volume of the liquid to be enriched, such as water or fruit juice, is about 100 mL-2 L, for example, about 100 mL, about 150 mL, about 200 mL, about 250 mL, about 300 mL, about 350 mL, about 400 mL, about 450 mL, about 500 mL, about 550 mL, about 600 mL, about 650 mL, about 700 mL, about 750 mL, about 800 mL, about 850 mL, about 900 mL, about 950 mL, about 1 L, about 1.5 L, or about 2 L. When the composition of the present invention is used to produce a cosmetic product, the amount of water is about 50 mL-500 mL, for example, about 50 mL, about 100 mL, about 150 mL, about 200 mL, about 250 mL, about 300 mL, about 350 mL, about 400 mL, about 450 mL, or about 500 mL.

[0042] Alternatively, water may be present in a topical carrier such as a cream, lotion, foam, paste, or gel to effectively deliver H to the skin. Methods for producing water-soluble topical carriers are well known in the art, for example, as described in Remington (Remington: The Science and Practice of Pharmacy, (22nd ed.) ed. LV Allen, Jr., 2013, Pharmaceutical Press, Philadelphia, PA) and in the cosmetics industry. During or after the reaction of the composition of the present invention with water, the carrier can be stirred, mixed, or agitated to ensure a uniform consistency.

[0043] container A variety of containers may be used to contact the composition with a volume of water. In one embodiment, the container has a lid that can be used to seal the container, for example, immediately after transferring the composition into the volume of water. The sealed container retains the generated H2 while the reaction proceeds to completion. Alternatively, H2 can be generated in an open container. One example of a suitable container is a double-walled, double-gasket stainless steel bottle.

[0044] How to use The compositions of the present invention, e.g., tablets, are used by contacting them with a carrier that promotes dissolution of the composition. An exemplary carrier is water. Typically, the amount of water used to dissolve the composition is 50 mL-2 L, e.g., 50 mL, 150 mL, 250 mL, 355 mL, 500 mL, 750 mL, or 1 L. The user adds the composition to water or other carrier in a sealable container and allows the reaction to proceed for 1 minute or more, e.g., 1-2 minutes, at least 5 minutes, 10 minutes, 15 minutes, 30 minutes, 45 minutes, 60 minutes, 90 minutes, or 12 hours, depending on the temperature of the water. In some embodiments, it is preferred that the composition react in less than 2 minutes. Preferably, the tablet and a volume of water produce a concentration of at least 0.5 mM, e.g., at least 1 mM, at least 3 mM, at least 5 mM, or at least 10 mM, e.g., 0.5-20 mM, 1-15 mM, or 5-10 mM. The inclusion of polysaccharides in the composition, or in the water or carrier, e.g., fruit juice, can increase the concentration of H2 locally near the polysaccharide or throughout the H2-enriched composition compared to the reaction in the absence of the polysaccharide.

[0045] As is known in the art, ingestion of hydrogen-enriched water is useful in treating a variety of disorders, including Parkinson's disease (Yoritaka et al., BMC Neurology, 2016, 16:66), depression (Zhang et al. Sci. Rep. 2016; 6:23742), periodontitis (Azuma et al. Antioxidants (Basel). 2015; 4(3):513-22), type II diabetes, metabolic syndrome, chronic renal failure, inflammation, rheumatoid arthritis, interstitial cystitis, cerebral ischemia, hyperlipidemia, chronic hepatitis B, and other disorders described in Ichihara et al. (Med. Gas Res. (2015) 5:12). Accordingly, the compositions of the present invention can be ingested by a subject suffering from any of these disorders to treat the disorder or alleviate one or more symptoms thereof.

[0046] Additionally, H2 has been shown to be an effective treatment for various dermatological conditions. For example, when the composition of the present invention is used to prepare a hydrogen-enriched aqueous liquid, the pH of the resulting aqueous liquid can be adjusted to produce a "beauty water" with a pH of 4.5-5.5, which has numerous health benefits (Lambers et al., Int. J. Cosmet. Sci. 2006, 28, 359-370). This "beauty water" has been used as a carrier base for ionic magnesium topical cosmetics, and the lower pH and H2 content effectively promote magnesium absorption through the skin (Magnes. Res. 2016; 29(2):35-42). In another example, H2-containing products have been shown to be promising treatments for topical skin conditions such as wrinkles, atopic dermatitis, and UV-induced skin burns (Mol. Cell. Toxicol. 2013, 9(1), 15-21). For topical application, the compositions of the present invention can be incorporated directly into a dermatological carrier such as a cream, lotion, foam, paste, or gel.

[0047] Hydrogen-containing products produced from in situ H2 generation can be used to improve the health of certain livestock animals, particularly dairy cows. H2 may potentially increase the useful life and lifespan of dairy cows, resulting in increased milk production.

[0048] The compositions of the present invention may also be used to generate hydrogen gas, which is inhaled, for example, by breathing in the hydrogen gas as it is released from an open container or through a cannula or nasal tube.

[0049] Hydrogen-enriched acidic composition The compositions of the present invention can be used in the manufacture of numerous consumer products for effectively delivering H to the skin, including, but not limited to, edible foods and dietary supplements (e.g., beverages), and skin care products such as lotions, bath bombs, or shower tablets. In some embodiments, the hydrogen-enriched composition is a beverage in an open container. For topical compositions, the compositions of the present invention can be directly incorporated into pharmaceutical- or cosmetic-grade topical carriers such as creams, lotions, foams, pastes, or gels. Topical compositions containing H can be soaked, rolled, rubbed, or sprayed directly onto the skin.

[0050] In the case of consumer products designed to be ingested by humans, such as dietary supplements, e.g., beverages, the acids used in producing the compositions of the present invention should be safe to consume, similar to the food acids described herein (e.g., malic acid or tartaric acid). The acids used in the compositions of the present invention used in the manufacture of consumer products designed for topical administration can be any pharmaceutically or cosmetically acceptable acid and its counterion that is considered "generally regarded as safe" as defined by the U.S. Food and Drug Administration for human and veterinary use. Representative acids include acetic acid, adipic acid, alginic acid, aspartic acid, benzenesulfonic acid, benzoic acid, boric acid, butyric acid, camphoric acid, camphorsulfonic acid, cyclopentanepropionic acid, digluconic acid, dodecylsulfuric acid, ethanesulfonic acid, glucoheptonic acid, glycerophosphoric acid, hemisulfuric acid, heptonic acid, hexanoic acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, 2-hydroxyethanesulfonic acid, lactobionic acid, lactic acid, lauric acid, lauryl sulfuric acid, malonic acid, and methanesulfonic acid. Examples of suitable acids include carboxylic acids such as sucralose, 2-naphthalenesulfonic acid, nicotinic acid, nitric acid, oleic acid, palmitic acid, pamoic acid, pectinic acid, persulfuric acid, 3-phenylpropionic acid, phosphoric acid, picric acid, pivalic acid, propionic acid, stearic acid, sulfuric acid, tartaric acid, thiocyanic acid, toluenesulfonic acid, undecanoic acid, valeric acid, their stereoisomers, all forms of alpha acids (e.g., α-luprinic acid), polycarboxylic acids, Lewis acids such as AlCl, or combinations thereof. Other such acids are known in the art.

[0051] The hydrogen-enriched water produced from the compositions of the present invention has a dissolved H concentration of 0.5 mM-20 mM, e.g., 1 mM-15 mM, 1-10 mM, 1 mM-4 mM, 1 mM-3 mM, 1 mM-2 mM, 1.5 mM-4 mM, or 2 mM-3 mM, e.g., about 0.5 mM, about 1 mM, about 1.5 mM, about 2 mM, about 3 mM, about 4 mM, about 5 mM, about 6 mM, about 7 mM, about 8 mM, about 9 mM, about 10 mM, about 15 mM, or about 20 mM. In other embodiments, the concentration is 1 ppm-3 ppm, 2 ppm-4 ppm, 3 ppm-6 ppm, 4 ppm-8 ppm, 5 ppm-10 ppm, 6 ppm-12 ppm, or 5 ppm-15 ppm.

[0052] The acid content of the composition used to enrich water with hydrogen may be sufficient to maintain a pH of less than 7, e.g., less than 6, e.g., 4-6, while consuming a sufficient amount of magnesium. The hydrogen-enriched composition may also include nutritional supplements, such as magnesium salts, sweeteners, flavorings, colorings, fragrances, essential oils, water-soluble lubricants, or polysaccharides. [Example]

[0053] Example 1 In this example, hydrogen-enriched water was made by dissolving the following two compositions in separate open containers, and the concentration of released hydrogen was monitored as a function of time. Sample Composition #1, "F6," dissolved in 500 mL of water held at 17°C 80mg Magnesium, -325 Mesh, Flakes 120mg tartaric acid, 120 mesh 200mg Malic Acid, 120 mesh 200mg dextrose 6mg sodium stearyl fumarate Sample Composition #2, "F1," dissolved in 500 mL of water held at 17°C 55mg Magnesium, -200 mesh, ground 25mg Magnesium, -325 mesh, flakes 340mg Malic Acid, 60 mesh 160mg lactose 6mg sodium stearyl fumarate

[0054] Composition F6, containing milled 120-mesh acid particles, dissolved faster (approximately 1.75 minutes) than composition F1, which contained larger 60-mesh acid particles (approximately 3.5 minutes). When the acid in composition F6 was milled to 60 mesh, the tablet dissolution time was approximately 3 minutes. Both composition F6 and composition F1 passed the minimum formulation test for friability. Further experimental data using milled tartaric acid particles less than 10 micrometers instead of 120-mesh particles in composition F6 resulted in a tablet dissolution time of 45 seconds. Furthermore, by using dextrose instead of lactose as a binder, the dissolution time per tablet was reduced by approximately 30 seconds while maintaining friability within acceptable limits.

[0055] The hydrogen concentration achieved by composition F6 after complete disintegration was 9 ppm. For composition F1, the hydrogen concentration after complete disintegration was 3.5 ppm. A similar composition that did not pass the friability test gave a peak hydrogen concentration of 12 ppm after about 75 seconds. All concentration data were the average of approximately 20 individual tablets of each composition.

[0056] In a second experiment, the dissolution of a composition containing both tartaric and malic acid ("F35") was investigated, comprising the following ingredients: 60mg Magnesium, -325 Mesh, Flakes 90mg tartaric acid 150mg malic acid 150mg dextrose 6mg sodium stearyl fumarate

[0057] Under the same water conditions as F1 and F6 (e.g., 500 mL of water in an open container at 17°C), the concentration was 5.3 ppm after a reaction time of approximately 80-90 seconds. The measured concentration was the average of approximately 20 tablets.

[0058] Example 2 An exemplary tablet for use in making a hydrogen-enriched ready-to-drink beverage contains the following components: 30mg-200 mesh magnesium 30mg - 325 Mesh Magnesium, Flakes 90mg tartaric acid 150mg malic acid 150mg dextrose 5.5mg 2500 mesh stearic acid

[0059] Example 3 A tablet for use in producing hydrogen-enriched beverages in a sealed container comprises the following ingredients: 55mg-200 mesh magnesium 25mg - 325 Mesh Magnesium, Flakes 310mg malic acid 100mg magnesium malate 160mg lactose 7mg sodium stearyl fumarate

[0060] These ingredients were compressed into tablets using a manual mechanical tablet press. The tablets, when dissolved in water in an airtight 500 mL container, produce H2 gas. In a standard soda bottle (500 mL), the H2 concentration reached 1.6 ppm (0.8 mM) within 15 minutes, 4 ppm (2 mM) within 2 hours, and greater than 6 ppm (3 mM) within 12 hours. In a double-walled, double-gasket stainless steel bottle, the concentration reached 2.8 ppm (1.4 mM) in 15 minutes, 3.8 ppm (1.9 mM) within 1 hour, and greater than 7 ppm (3.5 mM) within 12 hours. When the tablets are added to plain water, the pH of the final solution is 4-6.

[0061] When fruit juices, including those high in pectin such as lemon, lime, apple, and orange, are used as the liquid or in addition to the liquid, the concentration of H2 in the foam on top of the liquid can exceed 20 ppm (10 mM). Increased H2 concentrations have also been observed with premixed pectin (Certo®) and psyllium husk.

[0062] Example 4 A tablet designed for use in beverages to generate high concentrations of H2 contains the following components: 30mg magnesium 200mg malic acid Sufficient amounts of both binder and lubricant These ingredients can be compressed into a suitable tablet shape using a 9-11 mm diameter tableting die.

[0063] Example 5 Tablets designed for use in cosmetic, shower, or bath applications include the following components: 480mg magnesium 720mg tartaric acid 1200mg malic acid Both binder and lubricant in amounts sufficient to bring the tablet mass to 3600 mg These ingredients can be compressed into a suitable tablet shape using a 24 mm diameter tableting die.

[0064] Example 6 A second tablet configured for use in cosmetic, shower, or bath applications includes the following components: 240mg-325 Mesh Magnesium 360 mg of 80 mesh (or smaller) tartaric acid 600mg of 80 mesh (or less) malic acid Both binder and lubricant in amounts sufficient to bring the tablet mass to 1800 mg These ingredients can be compressed into a suitable tablet shape using an 18 mm diameter tableting die.

[0065] Example 7 Tablets adapted for use in beverages or cosmetic sprays contain the following components: 80mg-325 Mesh Magnesium 120 mg of 80 mesh (or smaller) tartaric acid 200mg of 80 mesh (or less) malic acid Both binder and lubricant in amounts sufficient to bring the tablet mass to 600 mg These ingredients can be compressed into a suitable tablet shape using a 12 mm diameter tableting die.

[0066] Example 8 Tablets adapted for use in beverages or cosmetic sprays contain the following components: 60mg magnesium 90mg tartaric acid 200mg malic acid Both binder and lubricant in amounts sufficient to bring the tablet mass to 4500 mg These ingredients can be compressed into a suitable tablet shape using a 12 mm diameter tableting die.

[0067] Example 9 Tablets designed specifically for use in cosmetics or beauty sprays contain the following components: 25-40mg of magnesium A sufficient amount of acid, in amounts greater than the tablets used to produce the enriched beverage. Sufficient amounts of both binder and lubricant These ingredients can be compressed into a suitable tablet shape using a 9 mm diameter tableting die.

[0068] Example 10 The advantage of tablets containing finely flaked magnesium particles is that H2 molecules are released one at a time. When sufficient acid is present and the mass of magnesium in the tablet is appropriate for the volume of liquid to be saturated with H2 (at least 80 mg magnesium and 300 mg total acid per 500 mL of liquid), H2 is released continuously, first producing H2 bubbles in the picometer-size range, which then coalesce into nanometer-size bubbles, then micrometer-size bubbles, and then larger bubbles. Nanometer-size bubbles can saturate aqueous solutions to higher levels than bubbles of other sizes, and therefore can generate higher H2 pressures in the liquid. This is because larger bubbles dissipate out of solution, but nanometer-size bubbles are more stable, and their physicochemical properties differ from those of individually dissolved H2 molecules, which alters their relationship to Henry's law and the gas fugacity coefficient. As the pressure increases, the reaction stops, as per Le Châtelier's principle, leaving sub-micrometer-sized magnesium flakes suspended in solution. As the H2 bubbles coalesce and further dissipate, the system pressure decreases, and an equal amount of magnesium reacts to produce more H2.

[0069] This continuous reaction allows the concentration of H2 evolved to be greater than 3 ppm when the composition is placed in an open container rather than a sealed bottle, e.g., under 1 atmosphere of pressure, but with constant replenishment of H2 to achieve a local concentration of H2 of approximately 9 ppm. The rate of disintegration of the tablet and the subsequent reaction of magnesium and acid can be accelerated by selecting the tablet components, e.g., coating or binder, to control the reaction rate to complete within 4 minutes, e.g., within 1-2 minutes.

[0070] Although the use of cold water to dissolve the composition of the present invention allows for increased hydrogen retention, the dissolution rate of the tablet and, subsequently, the entire hydrogen generation reaction, is significantly delayed. For example, in water slightly above freezing (1°C), the tablet of the present invention typically requires 4-5 minutes to completely dissolve. However, once the water is saturated, the dissolved hydrogen is retained in the water at a higher concentration for a longer period of time. When hot water is used to dissolve the composition of the present invention, the dissolution rate increases significantly, followed by faster hydrogen release. For example, in hot water, e.g., water above room temperature, the tablet of the present invention typically completely dissolves in less than 1 minute. However, the rate of gas bubble coalescence increases dramatically with increasing temperature, thereby reducing the retention time and overall stability of the enriched water.

[0071] Using current tableting technology and capabilities, the ideal water temperature range for dissolving tablets made from the compositions of the present invention is 12-20°C, depending on the final composition of the tablet.

[0072] Example 11 The compositions of the present invention, e.g., tablets, can dissolve in an open, e.g., ambient pressure, container, resulting in a metastable supersaturation of H2. Polysaccharides contained within the composition or present in the liquid carrier can form a boundary layer on the surface of the liquid. This boundary layer prevents the H2 gas cloud resulting from dissolution of the composition from rapidly dissipating. For example, in a rigid container, adding a pH adjuster, e.g., two tablespoons of lemon juice (which contains pectin) or vinegar, increases the available concentration of H2. Using vinegar produces a higher concentration of H2 throughout the liquid. When water and lemon juice are placed in a standard soda bottle made primarily of polyethylene terephthalate (PET), the concentration of H2 increases 6-7 times at the top of the gas cloud. In an open glass bottle containing the same solution of water and lemon juice, the concentration of H2 gas produced increases by approximately 20%. Using polysaccharides produces bubbles at the surface of the liquid, which contain a higher concentration of H2 compared to the rest of the liquid.

[0073] The open container allows for rapid production of a suspension of magnesium nanoparticles as soon as the tablets are placed in the container, which increases the reaction rate for H2 production. For example, in a tablet that reacted completely in 30-60 seconds, the bubbles that formed at the top of the surface popped violently, and a H2 concentration of 1.6 ppm was measured.

[0074] For the compositions of the present invention, 70-90 seconds is the ideal reaction speed, often reaching 10 ppm supersaturation within the gas cloud. The measured concentration of H2 appears to decrease linearly with time, reaching a typical SATP concentration of 1.6 ppm after 8 minutes of dissolution, as shown by the data in Table 1.

[0075] [Table 1]

[0076] Example 12 In this example, H2-enriched water made by dissolving a composition of the present invention, e.g., a tablet, in an open container was transferred to a sealable swing-top glass bottle and stabilized under pressure while the composition further dissolved. When the sealed bottle was opened, the measured concentration of H2 was 5.3 ppm.

[0077] In further experiments, H2-enriched water, made by dissolving a composition of the present invention, e.g., a tablet, in an open container, was transferred to a sealable PET soda bottle modified to include a pressure gauge to measure the pressure inside the bottle. As the reaction proceeded, the bottle began to pressurize, and as H2 bubbles formed and subsequently dissipated, a headspace formed within the bottle. After 5 minutes of reaction, the bottle measured 25 psi. And after 30 minutes of reaction, the bottle measured 45 psi. At this pressure, the H2 concentration was measured to be 2.3 ppm.

[0078] The composition in both containers (open and sealed) continued to react with the micrometer particles. As the H2 combined and dissipated, the pressure contained within the liquid was transferred to the headspace, increasing the pressure within the container. Notably, the pressure achieved by transferring the liquid from the open container into the plastic bottle reached and even exceeded the pressure generated by dropping a tablet into the plastic bottle and immediately sealing it. The same tablet, when immediately sealed, generated approximately 35 psi to stop the reaction per Le Chatelier's principle, thus also confirming the composition's ability to supersaturate.

[0079] Example 13 One variable that controls the production of hydrogen from the compositions of the present invention is the mass of magnesium used to react with the ground acid. The relationship between mass of magnesium and dissolved hydrogen concentration is approximately linear, with increasing amounts of magnesium used resulting in increased amounts of hydrogen produced for a fixed mass of acid. Table 2 shows hydrogen concentration data for various magnesium masses, where the acid was ground to a fine mesh (approximately 120 mesh) particle size and dissolution times of approximately 60-75 seconds.

[0080] [Table 2]

[0081] The effect of grinding the acid was also investigated by performing laser diffraction size distribution measurements of the bubbles generated during the dissolution reaction. When finely ground acid was used, the bubbles generated exhibited a bimodal distribution, with the first mode being approximately 50-60 nm in diameter and the second mode being 600 nm in diameter after noise correction. As noted in Example 10, nanometer-sized bubbles can saturate aqueous solutions to higher levels than bubbles of other sizes and therefore generate higher pressures of H2 in the liquid, thus confirming the importance of using finely ground acid in producing compositions for hydrogen enrichment of water.

[0082] In additional tests using tablets made with finely ground acid in an open container, 70 mL of hydrogen gas was produced within the first 80-90 seconds, out of a theoretical limit of 80 mL. By the next minute of reaction, only 6 mL of hydrogen gas had escaped from the surface of the liquid in the open container.

Claims

1. - 60-100 mg of magnesium metal having a mesh size of 200 mesh; At least one acid having a total mass of 100-4000 mg; and Polysaccharides that are not cellulose or its derivatives A composition comprising: A composition, wherein the composition produces at least 3 mM H 2 after contacting 500 mL of water in a container at atmospheric pressure and room temperature.

2. The composition described in claim 1, wherein the composition disintegrates in less than 2 minutes.

3. The composition described in claim 1, wherein the pH of the water remains below 7 for at least 10 minutes after the composition comes into contact with water.

4. The composition of claim 1, wherein the magnesium metal is in flake form or is crushed.

5. The composition of claim 1, wherein the magnesium metal comprises -325 mesh.

6. The composition of claim 1, wherein the amount of magnesium metal is 80 mg.

7. The composition described in claim 1, wherein the at least one acid is tartaric acid or malic acid, or a combination thereof.

8. The composition described in claim 1, wherein the at least one type of acid is 60 mesh or less.

9. The at least one acid is selected from the group consisting of maleic acid, succinic acid, malic acid, fumaric acid, formic acid, citric acid, ascorbic acid, oxalic acid, tartaric acid, acetic acid, adipic acid, alginic acid, aspartic acid, benzenesulfonic acid, benzoic acid, boric acid, butyric acid, camphoric acid, camphorsulfonic acid, cyclopentanepropionic acid, digluconic acid, dodecylsulfuric acid, ethanesulfonic acid, glucoheptonic acid, glycerophosphoric acid, hemisulfuric acid, heptonic acid, hexanoic acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, and 2-hydroxybenzoic acid.

10. The composition of claim 1, wherein the acid is ethanesulfonic acid, lactobionic acid, lactic acid, lauric acid, lauryl sulfuric acid, malonic acid, methanesulfonic acid, 2-naphthalenesulfonic acid, nicotinic acid, nitric acid, oleic acid, palmitic acid, pamoic acid, pectinic acid, persulfuric acid, 3-phenylpropionic acid, phosphoric acid, picric acid, pivalic acid, propionic acid, stearic acid, sulfuric acid, thiocyanic acid, toluenesulfonic acid, undecanoic acid, valeric acid, alpha acid, polycarboxylic acid, Lewis acid, or a combination thereof.

10. The composition of claim 1, further comprising a water-soluble lubricant.

11. The composition of claim 10, wherein the water-soluble lubricant is selected from sodium stearyl fumarate or stearic acid.

12. The composition described in claim 1, wherein the composition maintains a pH of less than 7 after 7 days of contact with water in a sealed container.

13. The composition of claim 1, further comprising a nutritional supplement, a sweetener, a flavoring agent, a coloring agent, a fragrance, or an essential oil.

14. The composition of claim 13, wherein the nutritional supplement is a magnesium salt.

15. The composition of claim 1, wherein the at least one acid has a solubility of at least 0.01 g / mL.

16. The composition of claim 15, wherein the at least one acid has a solubility in water of at least 0.05 g / mL.

17. The composition described in claim 1, wherein the composition maintains a pH of less than 7 10 minutes after contact with 50 mL of water.

18. The composition of claim 17, wherein a pH of less than 7 is maintained 30 minutes after contact with water.

19. The composition of claim 1, wherein the total mass of the acid is 200-600 mg.

20. The composition of claim 1, wherein the composition is a powder.

21. The composition of claim 1, wherein the polysaccharide is selected from the group consisting of apple powder, lemon powder, lime powder, grapefruit powder, fiber, and pectin.

22. The composition of claim 1, wherein the composition comprises two types of acids.

23. Each of the acids is selected from the group consisting of maleic acid, succinic acid, malic acid, fumaric acid, formic acid, citric acid, ascorbic acid, oxalic acid, tartaric acid, acetic acid, adipic acid, alginic acid, aspartic acid, benzenesulfonic acid, benzoic acid, boric acid, butyric acid, camphoric acid, camphorsulfonic acid, cyclopentanepropionic acid, digluconic acid, dodecylsulfuric acid, ethanesulfonic acid, glucoheptonic acid, glycerophosphoric acid, hemisulfuric acid, heptonic acid, hexanoic acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, and 2-hydroxyethanesulfonic acid.

23. The composition of claim 22, wherein the hydroxybenzoates are independently selected from the group consisting of: hydroxybenzoates, lactobionic acid, lactic acid, lauric acid, lauryl sulfuric acid, malonic acid, methanesulfonic acid, 2-naphthalenesulfonic acid, nicotinic acid, nitric acid, oleic acid, palmitic acid, pamoic acid, pectinic acid, persulfuric acid, 3-phenylpropionic acid, phosphoric acid, picric acid, pivalic acid, propionic acid, stearic acid, sulfuric acid, thiocyanic acid, toluenesulfonic acid, undecanoic acid, valeric acid, alpha acids, polycarboxylic acids, and Lewis acids.

24. A method for producing a hydrogen-enriched composition, comprising: generating nanometer-sized bubbles of hydrogen in an aqueous carrier in the presence of a polysaccharide to produce said hydrogen-enriched composition; The method of claim 1, wherein the presence of the polysaccharide increases the concentration of hydrogen in the composition compared to the concentration produced in the absence of the polysaccharide by retaining hydrogen in a carrier, and the concentration of hydrogen is at least 3 mM.

25. The method of claim 24, wherein the nanometer-sized bubbles are 50±10 nm to 600±10 nm.

26. The method of claim 24, wherein the step of generating nanometer-sized bubbles includes reacting a metal with an acid in a liquid.

27. The method of claim 26, wherein the metal is magnesium.

28. The acid is acetic acid, adipic acid, alginic acid, aspartic acid, benzenesulfonic acid, benzoic acid, boric acid, butyric acid, camphoric acid, camphorsulfonic acid, cyclopentanepropionic acid, digluconic acid, dodecylsulfuric acid, ethanesulfonic acid, glucoheptonic acid, glycerophosphoric acid, hemisulfuric acid, heptonic acid, hexanoic acid, hydrobromic acid, hydrochloric acid, hydroiodic acid, 2-hydroxyethanesulfonic acid, lactobionic acid, lactic acid, lauric acid, lauryl sulfuric acid, 27. The method of claim 26, wherein the acid is selected from the group consisting of malonic acid, methanesulfonic acid, 2-naphthalenesulfonic acid, nicotinic acid, nitric acid, oleic acid, palmitic acid, pamoic acid, pectinic acid, persulfuric acid, 3-phenylpropionic acid, phosphoric acid, picric acid, pivalic acid, propionic acid, stearic acid, sulfuric acid, tartaric acid, thiocyanic acid, toluenesulfonic acid, undecanoic acid, valeric acid, all forms of alpha acids, polycarboxylic acids, and Lewis acids.

29. The method of claim 26, wherein the metal is -200 mesh.

30. The method of claim 26, wherein the acid is 60 mesh or less.

31. The method of claim 24, wherein the polysaccharide is fibrous.

32. The method of claim 24, wherein the polysaccharide is selected from cellulose and its derivatives, starch, apple powder, lemon powder, lime powder, grapefruit powder, fiber, and pectin.

33. The method of claim 24, wherein the polysaccharide is dispersed in a carrier prior to the generation of nanometer-sized bubbles.

34. The method described in claim 24, wherein the composition reacts with water in a carrier to generate nanometer-sized bubbles, and the composition comprises the polysaccharide.

35. The method of claim 24, wherein the concentration of hydrogen is 5-10 mM.

36. The method of claim 24, wherein the concentration of hydrogen is 10-20 mM.

37. The method of claim 24, wherein the carrier is a liquid.

38. The method of claim 24, wherein the carrier is a gel.

39. A hydrogen-enriched composition comprising hydrogen dissolved in a carrier at a concentration of at least 3 mM.

40. The composition of claim 39, wherein the carrier is edible or cosmetic or pharmaceutical grade.

41. The composition of claim 39, which is a beverage.

42. The composition of claim 39, further comprising a nutritional supplement.

43. The composition of claim 39, wherein the concentration of hydrogen is about 20 mM.

44. The composition of claim 39, further comprising a polysaccharide.

45. The composition of claim 44, wherein the polysaccharide is selected from the group consisting of cellulose, hydroxypropyl methylcellulose, starch, apple powder, lemon powder, lime powder, grapefruit powder, psyllium husk, and pectin.

46. ​​The composition of claim 39, wherein the carrier is an aqueous liquid, cream, lotion, foam, paste, or gel.

47. The composition of claim 39, wherein the hydrogen is dispersed within bubbles in the carrier.