A hydrogen-rich water cup
By using a fullerene composite photocatalyst and an automatic control system in a hydrogen-rich water cup, the problems of high energy consumption and safety hazards of existing devices have been solved, achieving low-cost and safe hydrogen production and hydrogen-rich water generation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- INST OF CHEM CHINESE ACAD OF SCI
- Filing Date
- 2025-05-13
- Publication Date
- 2026-07-03
AI Technical Summary
Existing hydrogen-rich water preparation devices require an external power source, are complex and energy-intensive, and hydrogen production is difficult to control, posing safety hazards.
Using fullerene composite material as a photocatalyst, combined with a hydrogen storage chamber, gas-liquid mixing components and sensors, hydrogen is produced by photocatalysis and its concentration and pressure are automatically controlled. Hydrogen is generated by efficient catalytic water splitting under visible light. The hydrogen is then transported to the hydrogen storage chamber through a hydrogen conduit and micropores and mixed to form hydrogen-rich water.
It achieves portable, low-cost, and safe preparation of hydrogen-rich water with high hydrogen utilization efficiency, low energy consumption, and good safety. It can monitor and control hydrogen concentration in real time, avoiding the power consumption of electrolysis.
Smart Images

Figure CN224440911U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hydrogen-rich water preparation equipment, and more specifically, to a hydrogen-rich water cup. Background Technology
[0002] Hydrogen-rich water refers to water containing a high concentration of hydrogen gas. Hydrogen gas, as the smallest molecular weight antioxidant in nature, has a variety of beneficial physiological effects such as anti-oxidation, anti-inflammation, anti-aging, and inhibition of cell apoptosis. Long-term consumption of hydrogen-rich water can help enhance human immunity, delay aging, and promote human health.
[0003] Currently available hydrogen-rich water preparation devices can generally meet users' daily needs for hydrogen-rich water. These devices typically use electrolysis or chemical reactions to generate hydrogen gas and then produce hydrogen-rich water. However, these existing preparation methods usually require external power sources or electrode materials, resulting in relatively complex equipment, high energy consumption, and the electrodes are prone to aging and corrosion with long-term use, affecting water quality safety and limiting their portability and widespread use.
[0004] Fullerenes are a class of extremely stable and structurally well-defined carbon materials. Due to their unique electronic structure, they possess excellent electron accepting and transport properties, significantly improving the electron-hole pair separation efficiency in photocatalytic systems. They are widely used in photocatalysis, photoelectric conversion, organic photovoltaics, and other fields. Under sunlight irradiation, fullerenes and their derivatives, acting as photocatalysts, can efficiently catalyze the decomposition of water, rapidly generating hydrogen gas, thus demonstrating the potential for green, efficient, and low-cost hydrogen-rich water production. Furthermore, fullerenes are non-toxic, biocompatible, and suitable for contact with water without negatively impacting water quality. Therefore, embedding fullerene photocatalysts or their composites into the structure of hydrogen-rich water preparation cups promises a portable, low-cost, safe, and environmentally friendly hydrogen-rich water preparation solution. This technology not only overcomes the shortcomings of traditional electrolysis or chemical methods for hydrogen production but also further improves the safety and convenience of hydrogen-rich water equipment, exhibiting significant technological advantages and market prospects.
[0005] Existing technologies include hydrogen-rich water cups with photocatalyst-coated hydrogen production systems. However, these technologies overlook the problems associated with using photocatalytic coatings. Firstly, unlike traditional electrolysis or chemical methods, the photocatalytic hydrogen production process cannot be actively controlled by the user; hydrogen is continuously produced upon contact with water, and the effective transport and storage of this hydrogen is a problem that needs to be solved. Secondly, because hydrogen is flammable, improper management of the continuously accumulating hydrogen will pose a threat to the user's safety.
[0006] In summary, there is a need in the art to provide a hydrogen-rich water cup that can overcome the shortcomings of the prior art. Utility Model Content
[0007] This invention provides a hydrogen-rich water cup that solves the problems existing in the prior art. The objective of this invention is achieved through the following technical solution.
[0008] One embodiment of this utility model provides a hydrogen-rich water cup, which includes a cup body, a base, and a hydrogen conduit. The cup body includes an inner wall, an outer wall, micropores, and a catalyst coating. The base includes a hydrogen storage chamber and a gas-liquid mixing component. The inner wall is cup-shaped, forming a receiving space on its inner side. The outer wall is columnar and surrounds the outer side of the inner wall, forming a sandwich space around the inner wall. Micropores are disposed on the inner wall and located between the sandwich space and the receiving space. The catalyst coating is disposed within the sandwich space. The sandwich space is connected to the hydrogen storage chamber via the hydrogen conduit. The hydrogen storage chamber is connected to the gas-liquid mixing component. The gas-liquid mixing component is connected to the receiving space. Water in the receiving space enters the sandwich space through the micropores. The water in the sandwich space comes into contact with the catalyst coating and generates hydrogen gas under light. The hydrogen gas enters the hydrogen storage chamber through the hydrogen conduit. The hydrogen gas in the hydrogen storage chamber dissolves in the water through the gas-liquid mixing component to form hydrogen-rich water and flows into the receiving space.
[0009] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base that further includes a one-way valve, and the hydrogen storage chamber is connected to the gas-liquid mixing component through the one-way valve.
[0010] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base that further includes an exhaust pipe and an exhaust valve. One end of the exhaust pipe is connected to the hydrogen storage chamber, and the other end of the exhaust pipe is connected to the atmosphere outside the base. The exhaust valve is disposed on the exhaust pipe.
[0011] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base that further includes a pressure sensor and a control unit. The pressure sensor is disposed in the hydrogen storage chamber and is electrically connected to the control unit, and the control unit is electrically connected to the exhaust valve.
[0012] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a hydrogen concentration sensor and a display screen. The hydrogen sensor is located in the accommodating space and is disposed at the bottom of the inner wall, while the display screen is disposed on the outer side of the outer wall. The hydrogen concentration sensor and the display screen are electrically connected to the control unit.
[0013] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base that further includes a battery, which is electrically connected to a sensor, a control unit, an exhaust valve, a hydrogen concentration sensor, and a display screen.
[0014] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a protective film covering the surface of the catalyst coating.
[0015] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a protective film in the cup body and a switch in the base, the switch being disposed between the hydrogen storage chamber and the gas-liquid mixing component.
[0016] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a lid that is removably placed over the cup body.
[0017] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a filter unit disposed at the bottom of the cup body, and the gas-liquid mixing component is connected to the containing space through the filter unit.
[0018] The advantages of the hydrogen-rich water cup according to the embodiments of this utility model are as follows: it can efficiently and stably produce hydrogen under visible light, and is safe and non-toxic; when used in a hydrogen-rich water cup, it can achieve green and convenient production of hydrogen-rich water; it has high hydrogen utilization efficiency and can store continuously generated hydrogen; it is safe and reliable, and can automatically monitor the pressure in the hydrogen storage chamber and automatically vent when the pressure is too high; it is convenient to use, and can monitor the hydrogen concentration in the hydrogen-rich water in real time; hydrogen production does not require a power supply, which greatly reduces energy consumption and avoids the common problem of power consumption in electrolysis; this design reduces energy consumption, provides lower operating costs, and ensures the economy and efficiency of the equipment, meeting the requirements of today's environmental protection and energy conservation. Attached Figure Description
[0019] Other features, objects, and advantages of the present invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings.
[0020] Figure 1 A schematic diagram of a hydrogen-rich water cup according to one embodiment of the present invention is shown.
[0021] Figure 2 As shown Figure 1 The diagram shown is a cross-sectional view of the base of a hydrogen-rich water cup according to one embodiment of the present invention.
[0022] Figure 3 As shown Figure 1 The diagram shown illustrates the electrical connections of various components of a hydrogen-rich water cup according to one embodiment of the present invention. Detailed Implementation
[0023] The specific embodiments of this utility model are described below with reference to the accompanying drawings and examples. Through the content described in this specification, those skilled in the art can clearly and completely understand the technical solution, the technical problem solved, and the resulting technical effects of this utility model. It is understood that the specific embodiments described herein are only for explaining this utility model and not for limiting it. Furthermore, for ease of description, only the parts related to this utility model are shown in the accompanying drawings.
[0024] It should be noted that the structures, proportions, sizes, etc., shown in the accompanying drawings are only for the purpose of assisting those skilled in the art in understanding and reading the contents described in the specification, and are not intended to limit the conditions under which this utility model can be implemented. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportional relationships, or adjustments to the size, without affecting the effects and purposes that this utility model can produce, should fall within the scope of the technical content disclosed in this utility model.
[0025] The use of terms such as "first," "second," and "the" does not indicate quantity limitation and may indicate singular or plural. The terms "comprising," "including," "having," and any variations thereof used in this invention are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or device that includes a series of steps or modules is not limited to the listed steps or units, but may also include steps or units not listed, or other steps or units inherent to these processes, methods, products, or devices. The terms "connected," "linked," and "coupled" used in this invention are not limited to physical or mechanical connections, but may also include direct or indirect electrical connections.
[0026] Figure 1 A schematic diagram of a hydrogen-rich water cup according to one embodiment of the present invention is shown. Figure 2 As shown Figure 1 The diagram shown is a cross-sectional view of the base of a hydrogen-rich water cup according to one embodiment of the present invention. Figure 3 As shown Figure 1 The diagram shown illustrates the electrical connections of various components of a hydrogen-rich water cup according to one embodiment of the present invention. Those skilled in the art will understand that the positions, shapes, and sizes of the components in the diagram are merely illustrative and not limiting. In actual production, the positions, shapes, and sizes of the components can be adjusted within a reasonable range as needed, such as... Figure 1 , Figure 2 and Figure 3As shown, the hydrogen-rich water cup includes a cup body 1, a base 2, and a hydrogen delivery tube 4. The cup body 1 includes an inner wall 11, an outer wall 12, micropores (not shown in the figure), and a catalyst coating 13. The base 2 includes a hydrogen storage chamber 21 and a gas-liquid mixing component 22. The cup body 1 and the base 2 are detachably connected. The inner wall 11 is cup-shaped, and a receiving space 19 is formed on the inner side of the inner wall 11. The outer wall 12 is columnar and surrounds the outer side of the inner wall 11. A sandwich space 14 is formed between the inner wall 11 and the outer wall 12, surrounding the inner wall 11. The micropores are disposed on the inner wall 11 and located in the sandwich space 14 and the receiving space. Between spaces 19, a catalyst coating 13 is disposed in a sandwich space 14. The sandwich space 14 is connected to a hydrogen storage chamber 21 via a hydrogen conduit 4. The hydrogen storage chamber 21 is connected to a gas-liquid mixing component 22. The gas-liquid mixing component 22 is connected to the containment space 19. Water in the containment space 19 enters the sandwich space 14 through micropores. The water in the sandwich space 14 comes into contact with the catalyst coating and generates hydrogen under light. The hydrogen enters the hydrogen storage chamber 21 through the hydrogen conduit 4. The hydrogen in the hydrogen storage chamber 21 dissolves in water through the gas-liquid mixing component to form hydrogen-rich water and flows into the containment space 19.
[0027] According to one embodiment of the present invention, the hydrogen-rich water cup is provided, wherein the catalyst coating 13 is made of fullerene composite material. Fullerene composite material can generate photogenerated electrons and holes under light irradiation, efficiently catalyzing the decomposition of water to produce hydrogen. Furthermore, fullerene has high electron affinity and electron transport capability, effectively promoting rapid separation of electron-hole pairs, inhibiting carrier recombination, and improving hydrogen yield and reaction rate. The fullerene photocatalyst coating 13 is structurally stable, environmentally friendly, non-toxic, and exhibits high long-term stability. It maintains high catalytic performance even after reaction under continuous light irradiation, making it suitable for long-term repeated use.
[0028] According to one embodiment of the present invention, a hydrogen-rich water cup is provided, wherein the catalyst coating 13 made of fullerene composite material includes fullerene and its derivatives and a photocatalytic material. The fullerene derivative may be a fullerene modified with a hydrophilic group; preferably, the hydrophilic group is selected from one or more of hydroxyl, carboxyl, amino, ethylenediamine, imidazole, and fatty acid groups; preferably, the fullerene derivative includes one or more of fullerene aminated derivatives, fullerene carboxylated derivatives, fullerene hydroxylated derivatives, ethylenediamine-modified fullerene derivatives, and imidazole-modified fullerene derivatives; the photocatalytic material is selected from semiconductor materials and / or photosensitizer derivatives; preferably, the semiconductor material is selected from titanium dioxide, bismuth tungstate, etc. The photosensitizer is selected from one or more of bismuth oxide, tungsten oxide, molybdenum oxide, zirconium oxide, carbon nitride, carbon quantum dots, manganese oxide, bismuth vanadate, zinc oxide, and tin oxide; preferably, the photosensitizer derivative is selected from one or more of non-metallic porphyrin derivatives, metal porphyrins or their derivatives, metal titanium cyanide or their derivatives, ruthenium bipyridine, chlorophyll, eosin, porphyrin, rose red, rhodamine B, and methylene blue; preferably, the photosensitizer derivative is selected from one or more of tetracarboxylate titanium cyanide zinc, tetraphenyl zinc porphyrin, tetraphenyl copper porphyrin, and tetra(4-carboxyphenyl)cobalt porphyrin.
[0029] According to one embodiment of the present invention, the hydrogen-rich water cup is provided, wherein the fullerene is at least one of hollow fullerene, metal fullerene, heterocyclic fullerene, and endohedral fullerene.
[0030] Preferably, the fullerene is C 2a M@C 2a M2@C 2a MA@C 2a M3N@C 2a M2C2@C 2a M2S@C 2a M2O@C 2a and M x A 3-x N@C 2a Any one or a mixture thereof, wherein M and A are both metallic elements, and M and A are both selected from any one of the rare earth elements Sc and Y and the lanthanide elements, 30≤a≤60; 0≤x≤3;
[0031] Preferably, the fullerene is selected from hollow fullerene C. 2a Any one of the following; wherein 30≤a≤60, preferably 30, 35, 38, 39, 41 or 42; more preferably 30 or 35;
[0032] Alternatively, the fullerene may be selected from metallofullerene M2C2@C 2b or metallofullerene M'3N@C 2bAny one of the following; wherein 39≤b≤54, preferably 40, 41 or 42;
[0033] Preferably, M is at least one of the rare earth elements Sc, La, Y, and Dy; M' is at least one of the rare earth elements Sc, La, Y, Ho, Lu, Dy, or Er; M and M' are preferably rare earth elements Sc.
[0034] According to one embodiment of the present invention, the hydrogen-rich water cup 22 can be configured as a microporous diffuser or a vortex mixer to ensure thorough mixing and uniform distribution of hydrogen and water. The microporous diffuser disperses hydrogen into fine bubbles, significantly increasing the contact area between hydrogen and water, thereby improving hydrogen dissolution efficiency. The vortex mixer generates significant shear force and eddy currents through rotational motion, further accelerating the mixing process of hydrogen and water and increasing the hydrogen dissolution rate.
[0035] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base 2 that further includes a one-way valve 23, and the hydrogen storage chamber 21 is connected to the gas-liquid mixing component 22 through the one-way valve 23.
[0036] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base 2 that further includes an exhaust pipe 24 and an exhaust valve 25. One end of the exhaust pipe 24 is connected to the hydrogen storage chamber 21, and the other end of the exhaust pipe 24 is connected to the atmosphere outside the base 2. The exhaust valve 25 is disposed on the exhaust pipe 24.
[0037] According to one embodiment of the present invention, the hydrogen-rich water cup includes a one-way valve 23 that ensures hydrogen gas flows into the gas-liquid mixing component 22 in only one direction, preventing hydrogen gas backflow and ensuring stable pressure inside the water cup; the exhaust pipe 24 and the exhaust valve 25 can discharge excess hydrogen gas in a timely manner, preventing hydrogen gas accumulation and excessive pressure, thereby ensuring the safe use of the water cup.
[0038] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base 2 that further includes a pressure sensor 27 and a control unit 210. The pressure sensor 27 is disposed in the hydrogen storage chamber 21 and is electrically connected to the control unit 210. The control unit 210 is electrically connected to the exhaust valve 25.
[0039] According to one embodiment of the present invention, the hydrogen-rich water cup 1 further includes a hydrogen concentration sensor 18 and a display screen 110. Figure 1(Not shown in the image), a hydrogen sensor is located within the containing space 19 and positioned at the bottom of the inner wall 11. A display screen 110 is positioned on the outer side of the outer wall 12. The hydrogen concentration sensor 18 and the display screen 110 are electrically connected to the control unit 210. The display screen 110 is used to display the real-time hydrogen concentration value in the water cup. Through the intuitive display screen 110, users can understand the real-time changes in the hydrogen concentration in the cup, facilitating control of the increase in hydrogen concentration; the display screen 110 can also be used to display information such as the gas pressure in the hydrogen storage chamber 21. The display screen 110 can be an LCD or OLED screen, providing clear numerical display and a simple user interface, making operation more intuitive and convenient. Those skilled in the art can choose the position of the display screen 110 on the outer wall 12 according to the needs of the equipment structure and appearance design.
[0040] According to one embodiment of the present invention, the hydrogen-rich water cup includes a base 2 further comprising a battery 28, which is electrically connected to a pressure sensor 27, a control unit 210, an exhaust valve 25, a hydrogen concentration sensor 18, and a display screen 110. Preferably, the exhaust valve 25 is closed only when there is power, thereby preventing the hydrogen in the hydrogen storage chamber 21 from being unable to escape when the battery 28 is depleted.
[0041] According to one embodiment of the present invention, the hydrogen-rich water cup 1 further includes a protective film 15 covering the surface of the catalyst coating 13.
[0042] According to one embodiment of the present invention, the hydrogen-rich water cup includes a protective film 15 in the cup body 1 and a switch 26 in the base 2. The switch 26 is disposed between the hydrogen storage chamber 21 and the gas-liquid mixing component 22. The protective film 15 is a hydrophilic polymer film, which prevents photocatalyst particles on the catalyst coating 13 from entering the water while maintaining good hydrophilicity to ensure effective contact between water and the catalyst, thus promoting the smooth progress of the photocatalytic reaction. The hydrophilic polymer film not only effectively prevents catalyst migration but also enhances the overall stability and service life of the water cup.
[0043] According to one embodiment of the present invention, a hydrogen-rich water cup allows the user to control the diffusion and dissolution of hydrogen within the cup via switch 26. Specifically, when the user wishes to increase the hydrogen concentration in the water, they can turn on switch 26, allowing hydrogen to enter the gas-liquid mixing component 22 and accelerating its diffusion into the water. Conversely, when the switch is turned off, hydrogen diffusion is effectively limited, preventing excessive hydrogen accumulation and ensuring controllable hydrogen concentration within the cup, thus providing a better user experience.
[0044] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a lid 3, which has a sealing performance and can be removably placed on top of the cup body 1.
[0045] According to one embodiment of the present invention, the hydrogen-rich water cup includes a first connecting part 16 and a second connecting part 17 in the cup body 1, a third connecting part 29 in the base 2, and a fourth connecting part 31 in the cup lid 3. The first connecting part 16 and the fourth connecting part 31 cooperate to detachably connect the cup lid 3 and the cup body 1, and the second connecting part 17 and the third connecting part 29 cooperate to detachably connect the base 2 and the cup body 1.
[0046] According to one embodiment of the present invention, the hydrogen-rich water cup further includes a filter unit 10 disposed at the bottom of the cup body 1. The gas-liquid mixing component 22 is connected to the receiving space 19 through the filter unit 10. The filter unit 10 can be a filter membrane, a microporous filter membrane, etc.
[0047] The advantages of the hydrogen-rich water cup according to the embodiments of this utility model are as follows: it can efficiently and stably produce hydrogen under visible light, and is safe and non-toxic; when used in a hydrogen-rich water cup, it can achieve green and convenient production of hydrogen-rich water; it has high hydrogen utilization efficiency and can store continuously generated hydrogen; it is safe and reliable, and can automatically monitor the pressure in the hydrogen storage chamber and automatically vent when the pressure is too high; it is convenient to use, and can monitor the hydrogen concentration in the hydrogen-rich water in real time; hydrogen production does not require a power supply, which greatly reduces energy consumption and avoids the common problem of power consumption in electrolysis; this design reduces energy consumption, provides lower operating costs, and ensures the economy and efficiency of the equipment, meeting the requirements of today's environmental protection and energy conservation.
[0048] Although the present invention has been described and illustrated with reference to specific embodiments thereof, such description and illustration are not intended to limit the invention. It will be readily understood by those skilled in the art that various changes can be made and equivalent elements can be substituted within the embodiments without departing from the scope of protection of the invention as defined by the claims. Due to variables in the manufacturing process, etc., there may be differences between the technical reproduction in the present invention and the actual device. Other embodiments of the invention may exist that are not specifically described. The description and illustrations should be regarded as illustrative rather than restrictive, and modifications can be made to suit the purpose and spirit of the invention, all of which are within the scope of the claims. Although the methods disclosed herein have been described with reference to specific operations performed in a particular order, it should be understood that these operations can be rearranged, subdivided, or arranged to form equivalent methods without departing from the teachings of the invention. Therefore, unless specifically indicated herein, the order and grouping of operations do not limit the invention.
Claims
1. A hydrogen-rich water cup, characterized by, It includes a cup body, a base, and a hydrogen conduit. The cup body includes an inner wall, an outer wall, micropores, and a catalyst coating. The base includes a hydrogen storage chamber and a gas-liquid mixing component. The inner wall is cup-shaped, forming a receiving space on its inner side. The outer wall is columnar and surrounds the outer side of the inner wall, forming a sandwich space around the inner wall. The micropores are disposed on the inner wall and located between the sandwich space and the receiving space. The catalyst coating is disposed within the sandwich space. The sandwich space is connected to the hydrogen storage chamber via the hydrogen conduit. The hydrogen storage chamber is connected to the gas-liquid mixing component, which is connected to the receiving space. Water in the receiving space enters the sandwich space through the micropores. The water in the sandwich space comes into contact with the catalyst coating and generates hydrogen gas under light. The hydrogen gas enters the hydrogen storage chamber through the hydrogen conduit. The hydrogen gas in the hydrogen storage chamber dissolves in water through the gas-liquid mixing component to form hydrogen-rich water, which then flows into the receiving space.
2. The hydrogen-rich water cup according to claim 1, characterized by, The base also includes a one-way valve, and the hydrogen storage chamber is connected to the gas-liquid mixing component through the one-way valve.
3. The hydrogen-rich water cup according to claim 2, characterized by, The base also includes an exhaust pipe and an exhaust valve. One end of the exhaust pipe is connected to the hydrogen storage chamber, and the other end of the exhaust pipe is connected to the atmosphere outside the base. The exhaust valve is disposed on the exhaust pipe.
4. The hydrogen-rich water cup according to claim 3, characterized by, The base also includes a pressure sensor and a control unit. The pressure sensor is disposed in the hydrogen storage chamber and is electrically connected to the control unit, which is electrically connected to the exhaust valve.
5. The hydrogen-rich water cup according to claim 4, characterized by, The cup body also includes a hydrogen concentration sensor and a display screen. The hydrogen concentration sensor is located within the accommodating space and is disposed at the bottom of the inner wall. The display screen is disposed on the outer side of the outer wall. The hydrogen concentration sensor and the display screen are electrically connected to the control unit, respectively.
6. The hydrogen-rich water cup according to claim 5, characterized by The base also includes a battery, which is electrically connected to the sensor, the control unit, the exhaust valve, the hydrogen concentration sensor, and the display screen.
7. The hydrogen-rich water cup according to claim 1, characterized by, The cup body also includes a protective film that covers the surface of the catalyst coating.
8. The hydrogen-rich water cup according to claim 1, characterized by, The cup body also includes a protective film, and the base also includes a switch, which is disposed between the hydrogen storage chamber and the gas-liquid mixing component.
9. The hydrogen-rich water cup according to claim 1, characterized by, The hydrogen-rich water cup also includes a lid, which is removably placed over the cup body.
10. The hydrogen-rich water cup according to claim 1, characterized by, The cup body also includes a filter unit, which is disposed at the bottom of the cup body, and the gas-liquid mixing component is connected to the containing space through the filter unit.