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1.
J Mech Behav Biomed Mater ; 77: 90-105, 2018 01.
Article in English | MEDLINE | ID: mdl-28898726

ABSTRACT

Metallic biomaterials are widely used for clinical applications because of their excellent mechanical properties and good durability. In order to provide essential biofunctionalities, surface functionalization is of particular interest and requirement in the development of high-performance metallic implants. Inspired by the functional surface of natural biological systems, many new designs and conceptions have recently emerged to create multifunctional surfaces with great potential for biomedical applications. This review firstly introduces the metallic biomaterials, important surface properties, and then elaborates some strategies on achieving the bioinspired surface functionalization for metallic biomaterials.


Subject(s)
Biocompatible Materials/chemistry , Metals/chemistry , Animals , Biofilms , Bone Substitutes , Bone and Bones/chemistry , Calcium Phosphates/chemistry , Cell Line , Chromium Alloys , Corrosion , Equipment Design , Humans , Materials Testing , Mice , Microscopy, Electron, Scanning , Osseointegration , Prostheses and Implants , Stainless Steel , Surface Properties , Titanium
2.
Materials (Basel) ; 10(3)2017 Mar 02.
Article in English | MEDLINE | ID: mdl-28772613

ABSTRACT

Inspired by the array microstructure of natural superhydrophobic surfaces (lotus leaf and cicada wing), an array microstructure was successfully constructed by high speed wire electrical discharge machining (HS-WEDM) on the surfaces of a 7075 aluminum alloy without any chemical treatment. The artificial surfaces had a high apparent contact angle of 153° ± 1° with a contact angle hysteresis less than 5° and showed a good superhydrophobic property. Wettability, contact time, and the corresponding superhydrophobic mechanism of artificial superhydrophobic surface were investigated. The results indicated that the micro-scale array microstructure was an important factor for the superhydrophobic surface, while different array microstructures exhibited different effects on the wettability and contact time of the artificial superhydrophobic surface. The length (L), interval (S), and height (H) of the array microstructure are the main influential factors on the wettability and contact time. The order of importance of these factors is H > S > L for increasing the apparent contact angle and reducing the contact time. The method, using HS-WEDM to fabricate superhydrophobic surface, is simple, low-cost, and environmentally friendly and can easily control the wettability and contact time on the artificial surfaces by changing the array microstructure.

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