Investigation of biosensing properties in magnetron sputtered metallized UV-curable polymer microneedle electrodes.

IF 3.6 4区 医学 Q2 ENGINEERING, BIOMEDICAL
Baoling Jia, Tiandong Xia, Xiaohui Wang, Yangtao Xu, Bei Li
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引用次数: 0

Abstract

Direct management and assessment of metal film properties applied to polymer microneedle (MN) biosensors remains difficult due to constraints inherent to their morphology. By simplifying the three-dimensional structure of MNs and adjusting the deposition time, different thicknesses of Au films were deposited on the UV-cured polymer planar and MN substrates. Several properties relevant to the biosensing of the Au films grown on the polymer surfaces were investigated. The results demonstrate the successful deposition of pure and stable Au nanoparticles onto the surface of UV-curable polymer materials. Initially, Au islands formed within the first minute of deposition; however, as the sputtering time extended, these islands transformed into Au nanoparticle films and disappeared. The hydrophilicity of the surface remains unchanged, while the surface resistance of the thin film decreases with increasing thickness, and the adhesion to the substrate decreases as the thickness increases. In short, a sputtering time of 5-6 min results in Au films with a thickness of 100-200 nm, which exhibit exceptional comprehensive biosensing performance. Additionally, MNs made of Au/UV-curable polymers and produced using magnetron sputtering maintain their original shape, enhance their mechanical characteristics, and gain new functionalities. The Au/UV-curable polymer MNs exhibited remarkable electrode performance despite being soaked in a 37 °C PBS solution for 14 days. These discoveries have important implications in terms of decreasing the dependence on valuable metals in MN biosensors, lowering production expenses, and providing guidance for the choice and design of materials for UV-curable polymer MN metallization films.

磁控溅射金属化紫外线固化聚合物微针电极的生物传感特性研究
由于聚合物微针(MN)生物传感器的固有形态限制,直接管理和评估其金属膜特性仍然十分困难。通过简化微针的三维结构和调整沉积时间,在紫外固化聚合物平面和微针基底上沉积了不同厚度的金膜。研究了在聚合物表面生长的金薄膜的生物传感相关特性。结果表明,在紫外固化聚合物材料表面成功沉积了纯净稳定的金纳米粒子。最初,金岛在沉积的第一分钟内形成;然而,随着溅射时间的延长,这些金岛转变成金纳米粒子薄膜并消失。表面的亲水性保持不变,而薄膜的表面电阻随着厚度的增加而减小,与基底的附着力随着厚度的增加而减小。总之,5-6 分钟的溅射时间可获得厚度为 100-200 nm 的金薄膜,这种薄膜具有优异的综合生物传感性能。此外,利用磁控溅射技术制成的金/紫外固化聚合物 MN 还能保持原有形状、增强机械特性并获得新的功能。尽管金/紫外固化聚合物 MN 在 37 °C 的 PBS 溶液中浸泡了 14 天,但它们仍表现出卓越的电极性能。这些发现对于减少 MN 生物传感器对贵金属的依赖、降低生产成本以及指导紫外固化聚合物 MN 金属化薄膜材料的选择和设计具有重要意义。
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来源期刊
Journal of Biomaterials Science, Polymer Edition
Journal of Biomaterials Science, Polymer Edition 工程技术-材料科学:生物材料
CiteScore
7.10
自引率
5.60%
发文量
117
审稿时长
1.5 months
期刊介绍: The Journal of Biomaterials Science, Polymer Edition publishes fundamental research on the properties of polymeric biomaterials and the mechanisms of interaction between such biomaterials and living organisms, with special emphasis on the molecular and cellular levels. The scope of the journal includes polymers for drug delivery, tissue engineering, large molecules in living organisms like DNA, proteins and more. As such, the Journal of Biomaterials Science, Polymer Edition combines biomaterials applications in biomedical, pharmaceutical and biological fields.
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