Degradable coronary stent and manufacturing method thereof
A technology of coronary artery and matrix, applied in the field of degradable coronary stent and its preparation
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Embodiment 1
[0021] First, PLGA with a weight ratio of 85:15 of lactic acid and glycolic acid and a molecular weight of 100,000 was dissolved in ethyl acetate at a concentration of 1w / v%, and then a PLGA coating was prepared on the surface of pure iron by spraying, with a thickness of It is 23.4μm and dried in air for 24 hours.
[0022] The degradation rate of the pure iron sample coated with PLGA coating was 0.0405mm / year measured by weight loss method after immersion in 37oC physiological saline for 28 days, which was 4 times the degradation rate of the uncoated pure iron sample.
Embodiment 2
[0024] First, PLA with a molecular weight of 80,000 was dissolved in acetone at a concentration of 5w / v%, and then a PLA coating was prepared on the surface of the Fe-30Mn alloy by spraying with a thickness of 13.7 μm. Air dry for 12 hours.
[0025] The degradation rate of the Fe-30Mn alloy sample coated with PLA coating was 0.0384mm / year, which was 3.8 times that of the uncoated Fe-30Mn alloy sample after immersion in 37oC physiological saline for 28 days.
Embodiment 3
[0027] First, PLGA with a weight ratio of 60:40 of lactic acid and glycolic acid and a molecular weight of 70,000 was dissolved in chloroform at a concentration of 5w / v%, and then the PLGA coating was prepared on the surface of Fe-30Mn-1C alloy by dip coating. The layer, with a thickness of 21.9 μm, was dried in vacuum for 12 hours.
[0028] The degradation rate of the Fe-30Mn-1C alloy sample coated with PLGA coating was 0.0334mm / year measured by the weight loss method after immersion in 37oC physiological saline for 28 days, which is the degradation rate of the uncoated Fe-30Mn-1C alloy sample 3.3 times.
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