生物传感工具中的纳米级材料和聚合物集成。

IF 0.1 0 ART Zograf Pub Date : 2022-05-05 DOI:10.3390/bios12050301
Hichem Moulahoum, Faezeh Ghorbanizamani, Emine Guler Celik, Suna Timur
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引用次数: 0

摘要

生物传感器和诊断设备的发展欣欣向荣,能够提供操作步骤简化的可靠工具。这些演变为传感材料、策略和设备结构的进一步发展铺平了道路。聚合物复合材料可以形成不同类型的纳米结构和网络,包括水凝胶、囊泡、树枝状聚合物、分子印迹聚合物(MIP)等。由于其生物相容性、灵活性和低廉的价格,它们是未来片上实验室设备的理想工具,既可用作制造材料,也可用作固定表面。聚合物还能构建支架材料和三维结构,进一步提升传统二维生物传感器的传感能力。本综述讨论了聚合物结构的纳米级材料和合成技术的最新发展及其与传感应用的整合,强调了它们在制造可与台式仪器媲美的高灵敏度工具方面的各种结构优势。材料设计的发展为分散式医疗和公共保护打开了一扇新的大门,使现场和护理点诊断成为可能。
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Nano-Scaled Materials and Polymer Integration in Biosensing Tools.

The evolution of biosensors and diagnostic devices has been thriving in its ability to provide reliable tools with simplified operation steps. These evolutions have paved the way for further advances in sensing materials, strategies, and device structures. Polymeric composite materials can be formed into nanostructures and networks of different types, including hydrogels, vesicles, dendrimers, molecularly imprinted polymers (MIP), etc. Due to their biocompatibility, flexibility, and low prices, they are promising tools for future lab-on-chip devices as both manufacturing materials and immobilization surfaces. Polymers can also allow the construction of scaffold materials and 3D structures that further elevate the sensing capabilities of traditional 2D biosensors. This review discusses the latest developments in nano-scaled materials and synthesis techniques for polymer structures and their integration into sensing applications by highlighting their various structural advantages in producing highly sensitive tools that rival bench-top instruments. The developments in material design open a new door for decentralized medicine and public protection that allows effective onsite and point-of-care diagnostics.

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Zograf
Zograf Multiple-
CiteScore
0.20
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审稿时长
25 weeks
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