POLYMER SURFACE WITH T-SHAPED MICROSTRUCTURE AND FABRICATION METHOD THEREFOR AND APPLICATIONS THEREOF
20180280904 ยท 2018-10-04
Assignee
Inventors
Cpc classification
B29C2043/025
PERFORMING OPERATIONS; TRANSPORTING
B29C45/4478
PERFORMING OPERATIONS; TRANSPORTING
B81B7/04
PERFORMING OPERATIONS; TRANSPORTING
B01F33/3022
PERFORMING OPERATIONS; TRANSPORTING
B81B1/00
PERFORMING OPERATIONS; TRANSPORTING
B81C1/00214
PERFORMING OPERATIONS; TRANSPORTING
B29C45/0001
PERFORMING OPERATIONS; TRANSPORTING
B29C45/263
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C45/00
PERFORMING OPERATIONS; TRANSPORTING
B81B7/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention discloses polymer surfaces with T-shaped microstructure and their fabrication method and applications. The polymer surfaces with the T-shaped microstructure are characterized in that T-shaped microposts arrange orderly on them, and nanobulges arrange orderly on the top surfaces of the micronails of the T-shaped microposts. A flexible insert is designed and manufactured according to the geometry of the T-shaped microposts, and nanogrooves are manufactured on the cavity surface of an injection mold according to the geometry of the nanobulges on the top surfaces of the micronails. The flexible insert is mounted on the injection mold cavity. An injection molding machine is used to inject the molten polymer into the injection mold cavity. Then the polymer surfaces with the T-shaped microposts, on the top surfaces of the micronails of which the nanobulges arrange orderly, are molded. The polymer surfaces with the T-shaped microstructure exhibit robust Cassie-Baxter state and moderate surface adhesion to water droplets, and can be used for quantitative collection, lossless transportation or micromixing of microdroplets.
Claims
1. Polymer surfaces with T-shaped microstructure, characterized in that T-shaped microposts arrange orderly on them, and nanobulges arrange orderly on the top surfaces of the micronails of the T-shaped microposts.
2. The polymer surfaces with the T-shaped microstructure according to claim 1, characterized in that the cross-sectional shape of the T-shaped microposts is round, ellipse, polygon, arch, or multi-arc; the multi-arc is obtained by connecting multi-segment arcs.
3. The polymer surfaces with the T-shaped microstructure according to claim 1, characterized in that as for the T-shaped microposts, the micronails have cross-sectional dimensions of 2080 m and heights of 2080 m, the microposts have cross-sectional dimensions of 535 m and heights of 2080 m, the central distances between two adjacent microposts are 50100 m.
4. The polymer surfaces with the T-shaped microstructure according to claim 1, characterized in that nanobulges arrange orderly on the bottom surface of the T-shaped microstructure.
5. The fabrication method for the polymer surfaces with the T-shaped microstructure according to claim 1, characterized in that it comprises the steps of: (1) A flexible insert is designed and manufactured according to the geometry of the T-shaped microposts on the polymer surfaces; micropores, which are used to form the T-shaped microposts on the polymer surfaces, arrange orderly in the flexible insert; nanogrooves are manufactured on the cavity surface of an injection mold according to the geometry of the nanobulges on the top surfaces of the micronails of the T-shaped microposts on the polymer surfaces; (2) The flexible insert is mounted on the injection mold cavity; the injection mold is heated to a temperature in a range of 60120 C.; an injection molding machine is employed to plasticize and melt the polymer, and then inject the molten polymer into the injection mold cavity; the polymer melt fills the mold cavity as well as the micropores in the flexible insert and the nanogrooves on the injection mold cavity surface; and (3) The polymer melt within the mold cavity is packed and cooled; then the molded part is taken out of the mold cavity; the microposts can be detached from the insert with slight deformation and without residue during demolding due to its flexibility; finally, the polymer surfaces with the T-shaped microposts, on the top surfaces of the micronails of which the nanobulges arrange orderly, are molded.
6. The fabrication method for the polymer surfaces with the T-shaped microstructure according to claim 5, characterized in that as for the micropores in said step (1), the portion for forming the micronails of the T-shaped microposts has cross-sectional dimensions of 2080 m, and the portion for forming the microposts has cross-sectional dimensions of 535 m; the nanogrooves on the injection mold cavity surface have cross-sectional dimensions of 10900 nm.
7. The fabrication method for the polymer surfaces with the T-shaped microstructure according to claim 5, characterized in that a microdroplet dripping on the polymer surfaces with the T-shaped microstructure exhibits a contact angle of larger than 150 and a roll-off angle in a range of 0180.
8. The fabrication method for the polymer surfaces with the T-shaped microstructure according to claim 5, characterized in that for microdroplets on the polymer surfaces with the T-shaped microstructure, the relationship between the critical roll-off angle (y; degree) and accumulated droplet volume (x; L) is: y=ax.sup.2+bx+c, where a, b, and c are constants obtained by fitting.
9. The applications of the polymer surfaces with the T-shaped microstructure according to claim 1, characterized in that microfluidic devices with the T-shaped microposts arranged on the surface of their micro channels are employed for quantitative collection and lossless transportation of droplets.
10. The applications of the polymer surfaces with the T-shaped microstructure according to claim 1, characterized in that multiple micro channels with the T-shaped microposts in a microfluidic device are arranged at different titled angles to complete micromixing of different droplets with different ratios.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0038] The invention will be described in more detail with the aid of the embodiments and the accompanying drawings, but the mode for carrying out the invention is not limited to what described as follows.
Embodiment 1
[0039] The present embodiment discloses a polymer surface 1 with T-shaped microstructure. With reference to
[0040] The cross-sectional shape of the T-shaped microposts 2 is rectangle.
[0041] As for the T-shaped microposts 2, the micronails 3-1 have a cross-sectional width of 45 m and height of 12 m, the microposts 3-2 have a cross-sectional width of 30 m and height of 70 m, the central distance between two adjacent T-shaped microposts 2 is 55 m.
[0042] The cross-section of the nanobulges 4 on the top surfaces of the micronails 3-1 is arched and has a dimension of 900 nm.
[0043] The fabrication method for the aforesaid polymer surface 1 with the T-shaped microstructure comprises the following steps.
[0044] (1) Referring to
[0045] (2) The flexible insert 5 is mounted on the cavity surface of the injection mold 6. The injection mold 6 is heated to a temperature of 120 C. An injection molding machine is employed to plasticize and melt the polymer, and then inject the molten polymer into the cavity of the injection mold 6. The polymer melt fills the cavity of the injection mold 6 as well as the micropores in the flexible insert 5 and the nanogrooves on the cavity surface of the injection mold 6.
[0046] (3) The polymer melt within the cavity of the injection mold 6 is packed and cooled. Then the molded part is taken out of the mold 6. The microposts can be detached from the insert 5 with slight deformation and without residue during demolding due to its flexibility. Finally, the polymer surface 1 with the T-shaped microposts 2, on the top surfaces of the micronails 3-1 of which the nanobulges 4 arrange orderly, is molded.
[0047] As for the micropores in the flexible insert 5 in said step (1), the portion for forming the micronails 3-1 of the T-shaped microposts 2 has a cross-sectional width of 45 m, and the portion for forming the microposts 3-2 has a cross-sectional width of 30 m. The nanogrooves on the cavity surface of the injection mold 6 have a cross-sectional dimension of 900 nm.
[0048] In said step (2), the polymer is polypropylene. Referring to
[0049] Micro-droplets are continuously added onto the polypropylene surface 1 with the T-shaped microstructure tilted at six different angles (80, 70, 60, 50, 40, and 30). The pinned droplets grow in size until they overcome the surface adhesion and roll off the surface under the gravitation effect.
[0050] Microfluidic device with the aforesaid T-shaped microposts arranged on the surface of its micro channels can be used for the micromixing of droplets due to the moderate water adhesion. Reference is now made to
Embodiment 2
[0051] The present embodiment discloses a polymer surface 1 with the T-shaped microstructure. Compared with embodiment 1, there are the following differences for embodiment 2.
[0052] The cross-sectional shape of the T-shaped microposts 2 is round.
[0053] As for the T-shaped microposts 2, the micronails 3-1 have a cross-sectional diameter of 60 m and height of 30 m, the microposts 3-2 have a cross-sectional diameter of 15 m and height of 40 m, the central distance between two adjacent T-shaped microposts 2 is 90 m.
[0054] The cross-section of the nanobulges 4 on the top surfaces of the micronails 3-1 is trapezoid and has a dimension of 500 nm.
[0055] As for the micropores in the flexible insert 5 in said step (1), the portion for forming the micronails 3-1 of the T-shaped microposts 2 has a cross-sectional diameter of 60 m, and the portion for forming the microposts 3-2 has a cross-sectional diameter of 15 m. The nanogrooves on the cavity surface of the injection mold 6 have a cross-sectional dimension of 500 nm.
[0056] In said step (2), the polymer is polyethylene.
[0057] Referring to
[0058] Referring to
Embodiment 3
[0059] The present embodiment discloses a polymer surface 1 with the T-shaped microstructure. Compared with embodiment 1, there are the following differences for embodiment 3.
[0060] The cross-sectional shape of the T-shaped microposts 2 is regular hexagon.
[0061] As for the T-shaped microposts 2, the micronails 3-1 have a cross-sectional width of 30 m and height of 10 m, the microposts 3-2 have a cross-sectional width of 10 m and height of 30 m, the central distance between two adjacent T-shaped microposts 2 is 45 m.
[0062] The cross-section of the nanobulges 4 on the top surfaces of the micronails 3-1 is regular triangle in shape and has a width of 300 nm.
[0063] As for the micropores in the flexible insert 5 in said step (1), the portion for forming the micronails 3-1 of the T-shaped microposts 2 has a cross-sectional width of 30 m, and the portion for forming the microposts 3-2 has a cross-sectional width of 10 m. The nanogrooves on the cavity surface of the injection mold 6 have a cross-sectional width of 300 nm.
[0064] In said step (2), the polymer is polycarbonate.
[0065] A 4-L water droplet on the polycarbonate surface 1 with the T-shaped microstructure exhibits a contact angle of 153 and a roll-off angle of larger than 90.
Embodiment 4
[0066] The present embodiment discloses a polymer surface 1 with the T-shaped microstructure. Compared with embodiment 1, there are the following differences for embodiment 4.
[0067] As for the T-shaped microposts 2, the micronails 3-1 have a cross-sectional width of 60 m and height of 30 m, the microposts 3-2 have a cross-sectional width of 12 m and height of 40 m, the central distance between two adjacent T-shaped microposts 2 is 90 m.
[0068] With reference to
[0069] The cross-section of the nanobulges 12 is regular triangle in shape and has a width of 100 nm and depth of 200 nm.
[0070] Reference is now made to
[0071] As for the micropores in the flexible insert 5 in said step (1), the portion for forming the micronails 3-1 of the T-shaped microposts 2 have a cross-sectional width of 60 m, and the portion for forming the microposts 3-2 has a cross-sectional width of 12 m.
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[0073] The foregoing description and the drawings are illustrative of the present invention and are not to be taken as limiting, other embodiments are also allowed. Still other variants and rearrangements of parts within the spirit and scope of the present invention are possible and will be readily apparent to those skilled in the art.