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Multiscale porous titanium surfaces via a two-step etching process for improved mechanical and biological performance

机译:多尺寸多孔钛表面通过两步蚀刻工艺,以改善机械和生物学性能

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摘要

Titanium (Ti)-based dental implants with multiscale surface topography have attracted great attention as a promising approach to enhance fixation and long-term stability of the implants, through the synergistic effect of nano-and microscale surface roughness, for accelerated bone regeneration and improved mechanical interlocking. However, structural integrity and mechanical stability of the multiscale roughened Ti surface under deformation need to be considered because significant deformation of dental implants is often induced during the surgical operation. Therefore, in this study, a well-defined nanoporous structure was directly introduced onto micro-roughened Ti surfaces through target-ion induced plasma sputtering (TIPS) with a tantalum (Ta) target, following sandblasted, large-grit and acid-etching (SLA). This two-step etching process successfully created multiscale surface roughness on Ti with a minimal change of the pre-formed microscale roughness. Moreover, TIPS allowed the Ti surface to possess good mechanical stability under deformation and improved hydrophilicity, through altering the surface chemistry of brittle and hydrophobic SLAtreated Ti without formation of the interface between nanoporous and microporous structures. The in vitro and in vivo tests confirmed that multiscale roughened Ti significantly enhanced osteoblast attachment, proliferation and differentiation, which eventually led to improved bone regeneration and osseointegration, compared to smooth and micro-roughened Ti.
机译:钛(TI)的牙科植入物具有多尺度表面形貌,通过纳米和微观表面粗糙度的协同效应来增强植入物的固定和长期稳定性的有希望的方法引起了极大的关注机械互锁。然而,需要考虑多尺度粗糙的Ti表面的多尺度粗糙Ti表面的结构完整性和机械稳定性,因为在手术操作期间通常会诱导牙科植入物的显着变形。因此,在该研究中,通过靶离子诱导的等离子体溅射(TIPS)直接将定义的纳米多孔结构直接引入微型粗糙的Ti表面上,用钽(TA)靶,在喷砂,大砂砾和酸蚀刻( SLA)。这种两步蚀刻过程在Ti上成功地创建了多尺度表面粗糙度,具有预先形成的微尺度粗糙度的最小变化。此外,通过改变脆性和疏水性裂解Ti的表面化学而不形成纳米多孔和微孔结构之间的界面,使Ti表面允许Ti表面具有良好的机械稳定性和改善亲水性,而不会形成纳米多孔和微孔结构之间的界面。体外测试证实,与光滑和微粗糙的Ti相比,多尺度粗糙的Ti显着提高了成骨细胞附着,增殖和分化,最终导致了改善的骨再生和骨整合。

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