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Laser nanostructuring 3-D bioconstruction based on carbon nanotubes in a water matrix of albumin

机译:基于白蛋白水基纳米管的激光纳米结构3-D生物强制

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3-D bioconstructions were created using the evaporation method of the water-albumin solution with carbon nanotubes (CNTs) by the continuous and pulsed femtosecond laser radiation. It is determined that the volume structure of the samples created by the femtosecond radiation has more cavities than the one created by the continuous radiation. The average diameter for multi-walled carbon nanotubes (MWCNTs) samples was almost two times higher (35-40 nm) than for single-walled carbon nanotubes (SWCNTs) samples (20-30 nm). The most homogenous 3-D bioconstruction was formed from MWCNTs by the continuous laser radiation. The hardness of such samples totaled up to 370 MPa at the nanoscale. High strength properties and the resistance of the 3-D bioconstructions produced by the laser irradiation depend on the volume nanotubes scaffold forming inside them. The scaffold was formed by the electric field of the directed laser irradiation. The covalent bond energy between the nanotube carbon molecule and the oxygen of the bovine serum albumin aminoacid residue amounts 580 kJ/mol. The 3-D bioconstructions based on MWCNTs and SWCNTs becomes overgrown with the cells (fibroblasts) over the course of 72 hours. The samples based on the both types of CNTs are not toxic for the cells and don't change its normal composition and structure. Thus the 3-D bioconstructions that are nanostructured by the pulsed and continuous laser radiation can be applied as implant materials for the recovery of the connecting tissues of the living body.
机译:通过连续和脉冲飞秒激光辐射使用用碳纳米管(CNT)的水 - 白蛋白溶液的蒸发方法产生3-D生物焦。确定由飞秒辐射产生的样品的体积结构具有比由连续辐射产生的空腔更多。多壁碳纳米管(MWCNT)样品的平均直径几乎比单壁碳纳米管(SWCNT)样品(20-30nm)更高的(35-40nm)近两倍(35-40nm)。最均匀的3-D生物强制由连续激光辐射形成MWCNT。在纳米尺度上,这些样品的硬度总计最高可达370MPa。激光照射产生的3-D生物结构的高强度特性和电阻取决于它们内部的体积纳米管脚紧。通过指向激光辐射的电场形成支架。纳米管碳分子与牛血清白蛋白氨基酸残基的氧气之间的共价键能量为580kJ / mol。基于MWCNT和SWCNTS的3-D生物结构在72小时的过程中与细胞(成纤维细胞)过度生长。基于两种类型的CNT的样品对细胞没有毒性,并且不改变其正常的组成和结构。因此,通过脉冲和连续激光辐射纳米结构的3-D生物结构可以作为植入材料施加用于恢复活体的连接组织。

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