Method of making hydrophobic coating on curved surface shell and endoscope
11016389 · 2021-05-25
Assignee
Inventors
Cpc classification
B05D1/286
PERFORMING OPERATIONS; TRANSPORTING
G02B1/18
PHYSICS
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B29C59/02
PERFORMING OPERATIONS; TRANSPORTING
G03F7/0002
PHYSICS
B05D5/08
PERFORMING OPERATIONS; TRANSPORTING
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B05D3/067
PERFORMING OPERATIONS; TRANSPORTING
G03F7/12
PHYSICS
International classification
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
A61B1/00
HUMAN NECESSITIES
B29C59/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention provides a method of making a hydrophobic coating on a curved surface shell and an endoscope. The method forms the hydrophobic coating on the curved surface shell through the following steps. A nanoimprint elastic template is provided, and a nanoimprint structure is formed on the nanoimprint elastic template. A curved surface shell is provided, and a nanoimprint adhesive layer is arranged on the curved surface shell. A side where the nanoimprint structure is located in the nanoimprint elastic template and the nanoimprint adhesive layer are bonded together, and the nanoimprint structure is printed on the nanoimprint adhesive layer, and the nanoimprint adhesive layer is cured.
Claims
1. A method of making a hydrophobic coating on a curved surface shell of a capsule endoscope, comprising the following steps: providing a nanoimprint elastic template, wherein a nanoimprint template structure is formed on the nanoimprint elastic template; providing a curved surface shell, wherein a nanoimprint adhesive layer is arranged on the curved surface shell; binding the nanoimprint elastic template with the curved surface shell on a side where the nanoimprint template structure is located in the nanoimprint elastic template and where the nanoimprint adhesive layer is located, and printing the nanoimprint template structure onto the nanoimprint adhesive layer, by the steps of forming a nanoimprint assembly by placing the side where the nanoimprint structure is located in the nanoimprint elastic template on the nanoimprint adhesive layer; putting the nanoimprint assembly in a sealed working chamber; providing a flexible transparent cover film, covering the flexible transparent cover film on the nanoimprint assembly, extending over the edges of the nanoimprint assembly, and providing drape portion of the flexible transparent cover film extend horizontally, to removably and conformally supported by a flexible bottom plate of the sealed working chamber and forming a releasable surface area contact, so as to form an accommodating cavity between the flexible transparent cover film and the bottom plate of the sealed working chamber to accommodate the nanoimprint assembly; reducing air pressure in the sealed working chamber such that air pressure in the accommodating cavity is lower than the air pressure in the sealed working chamber in an initial state; and increasing air pressure in the sealed working chamber such that the air pressure in the sealed working chamber is higher than the air pressure in the accommodating cavity; and curing the nanoimprint adhesive layer to obtain the hydrophobic coating, which is a nanostructure printed on the nanoimprint adhesive layer of the curved surface shell.
2. The method of claim 1, wherein the nanoimprint adhesive layer is cured by heating or ultraviolet irradiation.
3. The method of claim 1, wherein the nanoimprint structure is a nano-conical structure, a nano-cylindrical structure, a rectangular pyramid structure or a triangular prism structure.
4. The method of claim 1, wherein the thickness of the nanoimprint adhesive layer is a value selected from 100 nm-5000 nm.
5. The method of claim 1, further comprising: forming a plurality of nanoparticles on the nanostructure of the nanoimprint adhesive layer after the nanoimprint adhesive layer is cured.
6. The method of claim 5, wherein the nanoparticles are formed on the nanostructure of the nanoimprint adhesive layer by evaporation or spraying.
7. The method of claim 5, wherein the nanoparticles are fluoride.
8. The method of claim 1, wherein the step of reducing air pressure in the sealed working chamber further comprising reducing air pressure in the sealed working chamber to 5 Pa to 100 Pa.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) The present invention can be described in detail below with reference to the accompanying drawings and preferred embodiments.
(8) The present invention provides a method of making hydrophobic coating on a curved surface shell and an endoscope produced by the method. The method can easily form a hydrophobic coating on a curved surface shell of the endoscope.
(9)
(10) a nanoimprint elastic template 11 is provided, and a nanoimprint structure 111 is formed on the nanoimprint elastic template 11;
(11) a curved surface shell 12 is provided, and a nanoimprint adhesive layer 121 is arranged on the curved surface shell 12;
(12) a side where the nanoimprint structure 111 is located in the nanoimprint elastic template 11 and the nanoimprint adhesive layer 121 are bonded together, and the nanoimprint structure 111 is printed on the nanoimprint adhesive layer 121; and
(13) the nanoimprint adhesive layer 121 is cured.
(14) As the nanoimprint elastic template 11 is separated from the curved surface shell 12, the nanoimprint structure 111 on the nanoimprint elastic template 11 is printed onto the nanoimprint adhesive layer 121 of the curved surface shell 12, and the “printed” nanostructure 122 is formed on the curved surface shell 12. That is, a hydrophobic coating is formed on the curved surface shell 12.
(15) The curved surface shell 12 can be any curved surface shell that requires a hydrophobic surface, such as a curved surface shell of an endoscope.
(16) In the embodiment, the hydrophobic coating is formed by a nanostructure 122. By providing a nanoimprint elastic template 11 with a nanoimprint structure 111 and coating a nanoimprint adhesive layer 121 on a curved surface shell 12, it can print the nanoimprint structure 111 on the nanoimprint elastic template 11 onto the nanoimprint adhesive layer 121 and then cure the nanoimprint adhesive layer 121 to form a nanostructure 122 on a curved surface shell 12. The nanostructure 122 has a good hydrophobic effect and can effectively prevent adhesion of various mucus in human body. Since a nanoimprint elastic template 11 is used, and the nanoimprint elastic template 11 can be bent to fit with the curvature of the curved surface shell of an endoscope for a better imprinting of a nanoimprint structure 111, a hydrophobic coating can be easily made on the curved surface shell of the endoscope.
(17) In the embodiment, the thickness of the nanoimprint adhesive layer 121 can be a value selected from 100 nm to 5000 nm. The nanoimprint adhesive 121 can be a thermal curing nanoimprint adhesive such as PDMS (polydimethylsiloxane), PMMA (polymethyl methacrylate), etc., and correspondingly, the nanoimprint structure 111 in the nanoimprint adhesive layer 121 is cured by heating. In other embodiments, the nanoimprint adhesive may also be an ultraviolet curing nanoimprint adhesive, such as I-UVP light curing adhesive, NXR-2000 series light curing adhesive, and NXR-4000 series light curing adhesive, etc., and correspondingly, the nanoimprint structure 111 in the nanoimprint adhesive layer 121 is cured by UV irradiating.
(18) In the embodiment, the curved surface shell 12 may be made of glass, quartz, plastic or the like.
(19) In the embodiment, the nanoimprint structure 111 on the nanoimprint elastic template 11 can be, but not limited to, a nano-conical structure, a nano-cylindrical structure, a rectangular pyramid structure or a triangular prism structure.
(20)
(21) Referring to
(22) placing the side where the nanoimprint structure 111 is located in the nanoimprint elastic template 11 on the nanoimprint adhesive layer 121 to form a nanoimprint assembly 10;
(23) putting the nanoimprint assembly 10 in a sealed working chamber 20;
(24) providing a flexible transparent cover film 30, covering the flexible transparent cover film 30 on the nanoimprint assembly 10 and extending over the edges of the nanoimprint assembly 10 to contact the bottom plate of the sealed working chamber 20, so as to form an accommodating cavity 40 between the flexible transparent cover film 30 and the bottom plate of the sealed working chamber 20 to accommodate the nanoimprint assembly 10;
reducing air pressure in the sealed working chamber 20 such that the air pressure in the accommodating cavity 40 is lower than the air pressure in the sealed working chamber 20 in an initial state, that is the original air pressure in the sealed working chamber 20 before reduction; and
increasing air pressure in the sealed working chamber 20 such that the air pressure in the sealed working chamber 20 is higher than the air pressure in the accommodating cavity 40. By this method, the nanoimprint elastic template 11 is bonded to the nanoimprint adhesive layer 121 and the nanoimprint structure 111 is printed onto the nanoimprint adhesive layer 121.
(25) In the embodiment, a flexible transparent cover film 30 is covered on the nanoimprint assembly 10, and the flexible transparent cover film 30 extends over the edges of the nanoimprint assembly 10 to contact the bottom plate of the sealed working chamber 20. Then, an accommodating cavity 40 is formed between the flexible transparent cover film 30 and the bottom plate of the sealed working chamber 20 to accommodate the nanoimprint assembly 10. First of all, reduce the air pressure in the sealed working chamber 20 with a vacuum pump. Since the flexible transparent cover film 30 is just in a contact state with the bottom plate of the sealed working chamber 20, when the air pressure in the sealed working chamber 20 is reduced, the air in the accommodating cavity 40 can overflow, and the air pressure in the accommodating chamber 40 can be lower than its initial state, that is the original air pressure in the sealed working chamber before reduction (but may be higher than the air pressure in the sealed working chamber 20 at this time). Second, increase the air pressure in the sealed working chamber 20. Since at this time the air pressure outside the accommodating cavity 40 can compress the flexible transparent cover film 30 to make it have a tighter contact with the bottom plate and disable the air in the sealed working chamber 20 to enter the accommodating cavity 40, the air pressure in the sealed working chamber 20 can be higher than the air pressure in the accommodating cavity 40, and the flexible transparent cover film 30 which can transmit the pressure of air in the sealed working chamber 20 applies force to the nanoimprint assembly 10.
(26) When the nanoimprint elastic template 11 is placed on the nanoimprint adhesive layer 121 in an unbent shape, the nanoimprint elastic template 11 can be bent under the action of the flexible transparent cover film 30, and then bonded to the nanoimprint adhesive layer 121, and the nanoimprint structure 111 is printed on the nanoimprint adhesive layer 121. It can be understood that the nanoimprint elastic template 11 can also be bonded to the nanoimprint adhesive layer 121 in advance. The method enables the nanoimprint elastic template 11 to be better bonded to the nanoimprint adhesive layer 121 according to the outer shape of the curved surface shell 12 of an endoscope and applies uniform force to the nanoimprint assembly 10, so that it is easier to shape the nanostructure 122.
(27) In the process, it is no longer necessary to inject high-pressure gas into the sealed working chamber 20, and it is no longer necessary to add a pressure boosting device to complete the bonding process. Further, after bonding, the method can directly cure the nanoimprint adhesive layer 121, which can shorten the time required for imprinting and improve work efficiency.
(28) Further, the method further comprises: forming a flexible substrate film 21 on the bottom plate of the sealed working chamber 20, covering the flexible transparent cover film 30 on the nanoimprint assembly 10 and extending over the edges of the nanoimprint assembly 10 to contact the flexible substrate film 21. By the arrangement of the flexible substrate film 21, the flexible transparent cover film 30 can have a tighter contact with the bottom plate of the sealed working chamber 20 under the action of external pressure.
(29) Further, in the step of reducing air pressure in the sealed working chamber 20, a vacuum pump can be used to pump air out of the sealed working chamber to reduce the air pressure therein to 5 Pa˜100 Pa.
(30) Further, in the step of increasing air pressure in the sealed working chamber 20, the inside of the sealed working chamber 20 is in communication with the outside. That is, the air pressure in the sealed working chamber 20 is substantially equal to the atmospheric pressure at this time.
(31) In summary, the present invention, by providing a nanoimprint elastic template 11 with a nanoimprint structure 111 and coating a nanoimprint adhesive layer 121 on a curved surface shell 12, makes it possible to print a nanoimprint structure 111 on a nanoimprint elastic template 11 onto a nanoimprint adhesive layer 121 and then cure the nanoimprint adhesive layer 121 to form a nanostructure 122 on a curved surface shell 12. The nanostructure 122 has a good hydrophobic effect and can effectively prevent adhesion of various mucus in human body. Since a nanoimprint elastic template 11 is used, and the nanoimprint elastic template 11 can be bent to fit with the curvature of the curved surface shell 12 of an endoscope for a better imprinting of a nanoimprint structure 111. By the method, a hydrophobic coating can be easily made on the curved surface shell 12. Further, the present invention, by an arrangement of the sealed working chamber 20 and the flexible transparent cover film 30, can bond the nanoimprint elastic template 11 to the nanoimprint adhesive layer 121 under a low pressure, and can also uniformly apply pressure to the nanoimprint assembly 10. The method can reduce the time taken for imprinting and thereby increase work efficiency.
(32) The present invention also provides an endoscope of which the curved surface shell have a hydrophobic coating 122 made by the method of making a hydrophobic coating 122 on a curved surface shell as disclosed herein. For other technical features of the endoscope, please refer to the prior art, and details are not described herein.
(33) The embodiments shown and described above are only examples. Even though numerous characteristics and advantages of the present technology have been set forth in the foregoing description, together with details of the structure and function of the present disclosure, the disclosure is illustrative only, and changes may be made in the detail, including in particular the matters of shape, size and arrangement of parts within the principles of the present disclosure, up to and including the full extent established by the broad general meaning of the terms used in the claims.