A 3D printed porous metal scaffold of composite magnetic nanomaterials and its preparation method
A technology of porous metals and nanomaterials, applied in the field of biomedical materials, can solve problems such as small application range, lack of biological activity, and insufficient mechanical strength, and achieve the effects of expanding application range, promoting proliferation, and strong mechanical strength
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Embodiment 1
[0053] The preparation of the 3D printing porous metal support of embodiment 1 composite magnetic nanomaterial
[0054] 1. Preparation of porous titanium alloy scaffold
[0055] (1) Import the CT image into three-dimensional image software such as Mimics or CAD to obtain a three-dimensional image of the target bone tissue. The average pore column is 100 μm and the pore diameter is 300 μm. Personalized porous connected 3D digital model (such as figure 1 shown).
[0056] (2) EOSM280 metal material 3D printer is used to print porous titanium alloy scaffolds (such as figure 2 shown).
[0057] 2. Preparation of the mixture of magnetic particles, natural polymer materials and bioceramics
[0058] (1) Add 1.5% w / v gelatin particles into deionized water and soak for 2 hours, and at the same time stir at 37° C. with a magnetic stirrer at 300 r / min until completely dissolved.
[0059] (2) Nano-hydroxyapatite powder nHA (diameter 20nm) and γ-Fe 2 o 3 Added to gelatin solution, wh...
Embodiment 2
[0065] Example 2 Preparation of 3D printed porous metal scaffolds of composite magnetic nanomaterials
[0066] 1. Preparation of porous titanium alloy scaffold
[0067] (1) Import the CT image into three-dimensional image software such as Mimics or CAD to obtain a three-dimensional image of the target bone tissue. The average pore column is 300 μm and the pore diameter is 1000 μm. Personalized porous connected 3D digital model (such as figure 1 shown).
[0068] (2) EOSM280 metal material 3D printer was used to print porous titanium scaffolds (such as figure 2 shown).
[0069] 2. Preparation of the mixture of magnetic particles, natural polymer materials and bioceramics
[0070] (1) Add 3% w / v gelatin particles into deionized water and soak for 2 hours, and at the same time stir at 37° C. with a magnetic stirrer at 300 r / min until completely dissolved.
[0071] (2) Nano-hydroxyapatite powder nHA (diameter 20nm) and γ-Fe 2 o 3 Added to gelatin solution, wherein the mass ...
Embodiment 3
[0077] Example 3 Preparation of 3D printed porous metal scaffolds of composite magnetic nanomaterials
[0078] 1. Preparation of porous titanium alloy scaffold
[0079] (1) Import the CT image into three-dimensional image software such as Mimics or CAD to obtain a three-dimensional image of the target bone tissue. The average pore column is 1000 μm and the pore diameter is 3000 μm. Personalized porous connected 3D digital model (such as figure 1 shown).
[0080] (2) EOSM280 metal material 3D printer was used to print porous titanium scaffolds (such as figure 2 shown).
[0081] 2. Preparation of the mixture of magnetic particles, natural polymer materials and bioceramics
[0082] (1) Add 5% w / v gelatin particles into deionized water and soak for 2 hours, and at the same time, stir at 37° C. with a magnetic stirrer at 300 r / min until completely dissolved.
[0083] (2) Nano-hydroxyapatite powder nHA (diameter 20nm) and γ-Fe 2 o 3 Added to gelatin solution, wherein the mas...
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