Biotribological Characteristics of Cutting-Edge Materials in Medical Applications: A Review

被引:0
|
作者
Verma, Shivam [1 ]
Sharma, Nitin [1 ]
Kango, Saurabh [1 ]
Sharma, Sumit [1 ]
机构
[1] Dr B R Ambedkar Natl Inst Technol Jalandhar, Jalandhar 144008, Punjab, India
关键词
Biotribology; Implants; High-performance polymers; PEEK (Polyetheretherketone); Biomaterials; MECHANICAL HEART-VALVES; EXPERIMENTAL TITANIUM-ALLOYS; IN-VITRO WEAR; ARTICULAR-CARTILAGE; TRIBOLOGICAL PROPERTIES; EXPERIMENTAL COMPOSITES; SPONTANEOUS BLINKING; DENTAL COMPOSITES; ION-IMPLANTATION; SHEAR-STRESS;
D O I
10.1007/s12666-024-03511-9
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Implantable medical devices and their associated materials constitute a cornerstone of modern medical science, addressing physical and aesthetic needs while ensuring biocompatibility and optimal performance. This review explores the intricate relationship between biotribology, material selection, and device efficacy, such as advancements in high-performance polymers like PEEK (polyetheretherketone), noting that they exhibit wear rates reduced by up to 48% compared to traditional materials, with coefficients of friction as low as 0.01 under dry conditions. Emphasis is placed on specific compositions and resultant microstructures that lead to enhanced tribological performance and biocompatibility. For example, the elastic modulus and nano-hardness of Bis-GMA/TEGDMA composites increased from 9.2 GPa and 420 MPa for 20% micro-sized hydroxyapatite to 16.8 GPa and 608 MPa for 20% micro-sized tricalcium phosphate reinforcement, indicating that the lower values in hydroxyapatite-containing composites can be attributed to its larger particle size compared to tricalcium phosphate. In cardiovascular devices, surface modifications, such as TiO2/TiN coatings, have shown to extend wear resistance, with coated artificial heart valves enduring over 38 million cycles without wear, while non-coated valves exhibited significant abrasion after 18 million cycles. Additionally, innovative designs in artificial joints and dental implants focus on mitigating fretting wear and improving stability through material optimization and surface treatments. This review highlights the importance of biotribological principles in the design of modern medical devices, vital in future advancements and improved patient outcomes.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Cutting-Edge Nanomaterials for Advanced Multimodal Bioimaging Applications
    Tsang, Ming-Kiu
    Wong, Yuen-Ting
    Hao, Jianhua
    SMALL METHODS, 2018, 2 (01):
  • [32] DNA microarray chips: Fabrication and cutting-edge applications
    Xu, Jiaxin
    Chun, Honggu
    Wang, Lingwei
    Mei, Hui
    Chen, Shanze
    Huang, Xiaoluo
    CHEMICAL ENGINEERING JOURNAL, 2024, 499
  • [33] Advancements in cutting-edge materials for sodium-ion battery anodes: A comprehensive review
    Sharmin, Tasnuva
    Hossain, Nazmul
    Mohsin, Fatima Tasneem
    Haque, Md Azazul
    Mashfy, Mohammad Muhtasim
    Alvy, Tamzeed Ahmed
    Nasim, Mohammad
    MATERIALS TODAY CHEMISTRY, 2024, 42
  • [34] Cutting-edge technology
    不详
    PSYCHOLOGIST, 1999, 12 (04) : 165 - 165
  • [35] Cutting-edge stuff
    Stack, Barbara
    World Tunneling, 2008, (14):
  • [36] Cutting-edge cleaning
    Operations Engineer, 2024, (06): : 16 - 17
  • [37] Cutting-edge metallurgy
    Philip Ball
    Nature Materials, 2014, 13 : 771 - 771
  • [38] Cutting-edge technology
    Nickels L.
    Metal Powder Report, 2019, 74 (03): : 126 - 129
  • [39] Cutting-Edge Renovation
    Nichols, Laurier
    Lacoursiere, Marc-Olivier
    Courchesne, Mathieu
    ASHRAE JOURNAL, 2013, 55 (08) : 60 - 65
  • [40] Cutting-edge innovation
    不详
    BRITISH DENTAL JOURNAL, 2018, 225 (02) : 196 - 196