A kind of hydrogel material with adjustable adhesion interface, preparation method and application thereof
A hydrogel and interface technology, applied in the field of hydrogels, can solve the problems of difficult adjustment of the underwater adhesion interface, achieve the in-situ cross-linking enhancement effect, increase the injectability and adhesion, and improve the adhesion performance. Effect
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[0038] In an embodiment of the present invention, the preparation method of the diffusion-driven hydrogel material with adjustable adhesion interface includes: using ultrapure water and natural protein to prepare a gelatin solution, mixing the gelatin solution with a cross-linking agent and continuously stirring, Raw rubber is initially formed, and kneaded repeatedly until it is fully cross-linked; then a certain proportion of cross-linking blocker is added, and kneading is continued until the cross-linking blocker fully reacts to obtain a hydrogel with super-adhesive properties. glue material. Wherein, the mass fraction of the gelatin solution is 5-20wt%, the cross-linking agent adopts polyphenol, the mass ratio of the polyphenol to the gelatin solution is 1:1, and the mass ratio of the cross-linking agent to the gelatin solution is 30: 1~10:3.
[0039] In the embodiment of the present invention, the diffusion-driven hydrogel with adjustable adhesion interface is composed of...
Embodiment 1
[0044] Example 1: Adhesion Test Implementation
[0045] Cut all bonding substrates such as clean and smooth glass, steel, wood boards made of camphor trees, PDMS without any surface treatment, and various tissue viscera into rectangles of 20mm×9mm. Pig skin, pig muscle, and pig heart are all newly purchased from the local market without any additional treatment. In terms of underwater adhesion, about 0.1 g of G0.6-T0.6-U0.12 hydrogel was used for each test in about 40 ml of ultrapure water. After pressing for 10 seconds, the external pressure is removed, and the sample is placed in water alone to measure data at different time intervals. In addition, the present invention also considers the influence of different water environments, and the glass is bonded in seawater, detergent (SDS, 1Wt% solution), flocculant (PAAK, 1Wt% solution) and acetone. Pig skin was adhered with PBS, DMEM, acid (HCl, PH=6) and base (NaOH, PH=8). For each test, the actual bonded area on the bonded s...
Embodiment 2
[0048] In order to further verify the mechanism of small molecule diffusion-driven regulation of the bonding interface, the present invention tested the experimental data of cross-linking blocker diffusion with a specific scheme and built a simulation model, as follows:
[0049] Dissolve 0.8g of 4-dimethylaminobenzaldehyde (DMAB) in 500ml of ethanol, add 50ml of hydrochloric acid (37.5%wt%) after stirring continuously. Prepare cross-linking blocker standard solutions with different concentrations (0mM, 5mM, 10mM, 20mM, 50mM, 0.2M) in distilled water. The standard cross-linking blocker solution (50 μl) and the same volume of DMAB solution were mixed and reacted and placed in a 96-well plate. The absorbance at 420 nm was measured with a multimode microplate reader (Varioskan LUX, Throme Fisher) to obtain a cross-linking blocker standard curve. In actual measurement, fresh pigskin is cut into strips of 30 mm x 9 mm. According to the same underwater adhesion shear test method, u...
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Abstract
Description
Claims
Application Information
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