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从低引发剂密度的基底引发的表面聚合及其在生物传感器中的应用。

Surface initiated polymerization from substrates of low initiator density and its applications in biosensors.

机构信息

Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou 215123, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2010 Nov;2(11):3223-30. doi: 10.1021/am1006832. Epub 2010 Oct 13.

Abstract

Surface initiated polymerization (SIP) has become an attractive method for tailoring physical and chemical properties of surfaces for a broad range of applications. Most of those applications relied on the merit of high density coating. In this study, we explored a long overlooked field of SIP: SIP from substrates of low initiator density. We combined ellipsometry with AFM to investigate the effect of initiator density and polymerization time on the morphology of polymer coatings. In addition, we carefully adjusted the nanoscale separation of polymer chains to achieve a balance between nonfouling and immobilization capacities. We further tested the performance of those coatings on various biosensors, such as quartz crystal microbalance, surface plasmon resonance, and protein microarrays. The optimized matrices enhanced the performance of those biosensors. This report shall encourage researchers to explore new frontiers in SIP that go beyond polymer brushes.

摘要

表面引发聚合(SIP)已成为一种有吸引力的方法,可以针对广泛的应用来调整表面的物理和化学性质。这些应用中的大多数都依赖于高密度涂层的优势。在这项研究中,我们探索了 SIP 的一个长期被忽视的领域:从低引发剂密度的基底引发 SIP。我们将椭圆光度法与原子力显微镜相结合,研究了引发剂密度和聚合时间对聚合物涂层形貌的影响。此外,我们仔细调整了聚合物链的纳米级分离,以在非粘连性和固定化能力之间取得平衡。我们进一步在各种生物传感器上测试了这些涂层的性能,如石英晶体微天平、表面等离子体共振和蛋白质微阵列。优化的基质增强了这些生物传感器的性能。本报告将鼓励研究人员探索 SIP 的新前沿领域,超越聚合物刷。

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