首页> 外文期刊>ACS applied materials & interfaces >Nanopore Gradients on Porous Aluminum Oxide Generated by Nonuniform Anodization of Aluminum
【24h】

Nanopore Gradients on Porous Aluminum Oxide Generated by Nonuniform Anodization of Aluminum

机译:铝不均匀阳极氧化生成多孔氧化铝上的纳米孔梯度

获取原文
获取原文并翻译 | 示例
       

摘要

A method for surface engineering of structural gradients with nanopore topography using the self-ordering process based on electrochemical anodization of aluminum is described. A distinct anodization condition with an asymmetrically distributed electric field at the electrolyte/aluminum interface is created by nonparallel arrangement between electrodes (tilted by 45°) in an electrochemical cell. The anodic aluminum oxide (AAO) porous surfaces with ordered nanopore structures with gradual and continuous change of pore diameters from 80 to 300 nm across an area of 0.5-1 cm were fabricated by this anodization using two common electrolytes, oxalic acid (0.3 M) and phosphoric acid (0.3 M). The formation of pore gradients of AAO is explained by asymmetric and gradual distribution of the current density and temperature variation generated on the surface of Al during the anodization process. Optical and wetting gradients of prepared pore structures were confirmed by reflective interferometric spectroscopy and contact angle measurements showing the ability of this method to generate porous surfaces with multifunctional gradients (structural, optical, wetting). The study of influence of pore structures on cell growth using the culture of neuroblastoma cells reveals biological relevance of nanopore gradients and the potential to be applied as the platform For spatially controllable cell growth and cell differentiation.
机译:描述了一种利用基于铝的电化学阳极氧化的自排序过程,利用纳米孔形貌对结构梯度进行表面工程化的方法。电解液/铝界面处的电场不对称分布的独特阳极氧化条件是由电化学电池中电极之间的不平行布置(倾斜45°)产生的。通过使用两种常见的电解质草酸(0.3 M)进行阳极氧化,制造出具有规则纳米孔结构的阳极氧化铝多孔表面,该纳米孔结构在0.5-1 cm的区域内逐渐从80到300 nm逐渐改变孔径。和磷酸(0.3 M)。 AAO孔梯度的形成可以通过阳极氧化过程中在Al表面产生的电流密度和温度变化的不对称和逐渐分布来解释。制备的孔结构的光学和润湿梯度通过反射干涉光谱法和接触角测量得到证实,表明该方法能够生成具有多功能梯度(结构,光学,润湿)的多孔表面。使用成神经细胞瘤细胞培养物研究孔结构对细胞生长的影响,揭示了纳米孔梯度的生物学相关性,并有潜力用作空间可控制的细胞生长和细胞分化的平台。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号