STRUCTURE FOR PREVENTING ADHESION OF MICROORGANISMS
20210355330 · 2021-11-18
Inventors
Cpc classification
B29C43/56
PERFORMING OPERATIONS; TRANSPORTING
A01N25/34
HUMAN NECESSITIES
B29C59/022
PERFORMING OPERATIONS; TRANSPORTING
B29C2043/026
PERFORMING OPERATIONS; TRANSPORTING
B29C43/021
PERFORMING OPERATIONS; TRANSPORTING
A01N25/34
HUMAN NECESSITIES
B29C2043/568
PERFORMING OPERATIONS; TRANSPORTING
B29C59/026
PERFORMING OPERATIONS; TRANSPORTING
B29C43/003
PERFORMING OPERATIONS; TRANSPORTING
B08B17/065
PERFORMING OPERATIONS; TRANSPORTING
C09D5/1681
CHEMISTRY; METALLURGY
International classification
A01N25/34
HUMAN NECESSITIES
B08B17/06
PERFORMING OPERATIONS; TRANSPORTING
B29C43/56
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a structure for preventing the adhesion of microorganisms, which is capable of preventing microorganisms from adhering to and growing on a surface of an object, and a method of manufacturing the same. The structure for preventing the adhesion of microorganisms includes: a nano-structure configured to include a plurality of protruding structures each having a sharp end and made of a resin composition; and a plurality of nano-metal particles configured to be distributed inside the nano-structure. A method of manufacturing a structure for preventing adhesion of microorganisms includes preparing a liquid resin; mixing the liquid resin with nano-metal particles; depositing the liquid resin on a substrate; pressing the liquid resin with a master template on which a pattern corresponding to a plurality of protruding structures is formed; and setting or curing the liquid resin.
Claims
1. A structure for preventing microorganisms from adhering to and growing on a surface of an object, the structure comprising: a nano-structure layer made of a resin composition and containing patterned protrusions at a top portion thereof; an exposed group of nano-metal particles located on and exposed out of a top surface of the patterned protrusions; and an embedded group of nano-metal particles fully embedded inside the patterned protrusions, wherein a density of the embedded group decreases in a direction inward the patterned protrusions and a density of the exposed group is higher than the density of the embedded group.
2. The structure of claim 1, wherein the patterned protrusions are a plurality of tip-shaped structures, each having a sharp end.
3. The structure of claim 1, wherein the patterned protrusions are one of sinusoidal structures, column-shaped structures, and inverted U-shaped structures.
4. The structure of claim 1, wherein the plurality of nano-metal particles is made of one or more metals selected from the group consisting of copper (Cu), silver (Ag), platinum (Pt), gold (Au), zinc (Zn), and palladium (Pd).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The above and other objects, features and advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0028]
[0029] Although the structure for preventing the adhesion of microorganisms is configured to include the set of tip-shaped structures each having a sharp end in order to maximize a sterilization effect in the embodiment shown in
[0030] Although the present invention will be described below with a focus on tip-shaped structures capable of providing a maximized effect, it will be apparent to a person skilled in the art that the following description can be also applied to protruding structures (sinusoidal structures, column-shaped structures, inverted U-shaped structures, etc.), other than the tip-shaped structures.
[0031]
[0032] Furthermore, the nano-structure 130 includes a plurality of tip-shaped structures each having a sharp end. Although the tip-shaped structures may be generally pyramid-shaped structures or cone-shaped structures, they are not limited to a specific shape as long as they are shaped to have sharp ends and can thus influence the cell membranes of microorganism.
[0033] The nano-structure 130 is made of a resin composition for the sake of ease of manufacture. For example, the nano-structure 130 is made of an ultraviolet curable resin composition which remains in a liquid phase before curing and is solidified when ultraviolet rays are radiated thereonto. Although the ultraviolet curable resin composition includes acryl- or epoxy-based ultraviolet curable resin compositions, the ultraviolet curable resin composition is not limited thereto as long as an ultraviolet curable resin composition which is in a liquid phase before curing and is transformed into a solid phase after curing is employed. Moreover, the nano-structure 130 according to the present invention may be also made of a thermosetting resin composition, such as a phenol resin, an epoxy resin, or the like. The dimensions of the tip-shaped structures constituting part of the nano-structure 130 may vary depending on a sterilization target. Generally, it was found that a desirable effect was achieved when the distance (pitch; D) between the tips of the tip-shaped structures ranged from 200 to 300 nm and the vertical distance (height; H) from the bottoms of the tip-shaped structures to the tips thereof ranged from 300 to 500 nm.
[0034] For reference, although the effect will increase as the height H of the tip-shaped structures increases, the height H of the tip-shaped structures may be determined at a appropriate level (which is two or more times the width of the tip-shapes structures) by taking into account the limitations of technology for manufacturing a nano-structure, manufacturing cost, etc. Furthermore, the pitch of the tip-shaped structures may be designed to be ½ to ⅓ of the size of microorganisms (bacteria).
[0035] The nano-metal particles 120 are not limited to a specific type of metal as long as the metal of the nano-metal particles 120 is effective in sterilization. It is generally known that nano-particles of copper Cu, silver Ag, platinum Pt, gold Au, zinc Zn, and palladium Pd have desirable effects. The optimum size of the nano-metal particles 120 may vary depending on a sterilization target.
[0036] According to the first embodiment of the present invention, when microorganisms approach the structure 100 for preventing the adhesion of microorganisms, the nano-metal particles 120 present on the surface of the structure 100 for preventing the adhesion of microorganisms penetrate into the microorganisms and then disrupt the microbial metabolism of the microorganisms. In this case, when the tips of the nano-structure 130 destruct the cell membranes of the microorganisms, a sterilization effect is amplified. Accordingly, this can achieve an improved effect compared to a case where only a nano-structure or nano-metal particles are present.
[0037]
[0038] Generally, it is advantageous in a cost-effectiveness aspect that all the nano-metal particles 120 are concentrated on the surface of the nano-structure. Meanwhile, when the structure 100 for preventing the adhesion of microorganisms is used in an environment where it is difficult to replace the structure 100, nano-metal particles present on the surface of the nano-structure 130 may be lost due to abrasion or the like attributable to long-term use. In contrast, when a structure for preventing the adhesion of microorganisms, such as that according to the second embodiment, is utilized, metal nano-particles 120 present inside the surface continue to perform a sterilization function in place of the lost nano-metal particles. In this case, although the metal nano-particles 120 may be uniformly distributed throughout the inside of the nano-structure 130, the density of the distribution of the metal nano-particles 120 may be highest on the surface of the nano-structure 130, and may decrease in a direction inward from the surface of the nano-structure 130.
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[0040] Referring to
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[0046] The structure for preventing the adhesion of microorganisms manufactured using the above-described method may be used to prevent biofilms to be formed on medical instruments, such as catheters, various types of implants, artificial organs, etc., and may be applied to all types of artificial structures, such as water service pipes, sewer pipes, water purifiers, air purification facilities, etc., which are accessible to microorganisms.
[0047] The structure for preventing the adhesion of microorganisms according to the present invention is made of a polymer resin which is relatively inexpensive and is easy to handle, has protruding shapes capable of preventing microorganisms from adhering to the surface of the structure, and includes distributed nano-metal particles, so that the adhesion of microorganisms to the surface can be delayed and the nano-metal particles can penetrate into the cells of the microorganisms, thereby providing sterilization capability.
[0048] Furthermore, when the protruding nano-structures are a plurality of tip-shaped structures each having a sharp end, the cell membranes of microorganisms are destructed by tips, and the nano-metal particles can easily penetrate the cells of the microorganism, thereby maximizing sterilization capability.
[0049] Moreover, according to the present invention, the nano-metal particles are disposed using a method of distributing nano-metal particles toward the surface of the structure by inducing the nano-metal particles floating inside the polymer resin before setting or curing to move in an electrical manner, rather than a method such as sputtering or the like, and thus a manufacturing process is simplified, and manufacturing cost can be significantly reduced.
[0050] Although the specific embodiments of the present invention have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions, and substitutions are possible without departing from the scope and spirit of the invention as disclosed in the accompanying claims.