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在高真空环境中生物仿生薄膜的原位制备及其对生物的表面屏蔽效应。

In situ preparation of biomimetic thin films and their surface-shielding effect for organisms in high vacuum.

机构信息

Departments of Chemistry, Hamamatsu University School of Medicine, Higashi-ku, Hamamatsu, Japan.

出版信息

PLoS One. 2013 Nov 13;8(11):e78563. doi: 10.1371/journal.pone.0078563. eCollection 2013.

Abstract

Self-standing biocompatible films have yet to be prepared by physical or chemical vapor deposition assisted by plasma polymerization because gaseous monomers have thus far been used to create only polymer membranes. Using a nongaseous monomer, we previously found a simple fabrication method for a free-standing thin film prepared from solution by plasma polymerization, and a nano-suit made by polyoxyethylene (20) sorbitan monolaurate can render multicellular organisms highly tolerant to high vacuum. Here we report thin films prepared by plasma polymerization from various monomer solutions. The films had a flat surface at the irradiated site and were similar to films produced by vapor deposition of gaseous monomers. However, they also exhibited unique characteristics, such as a pinhole-free surface, transparency, solvent stability, flexibility, and a unique out-of-plane molecular density gradient from the irradiated to the unirradiated surface of the film. Additionally, covering mosquito larvae with the films protected the shape of the organism and kept them alive under the high vacuum conditions in a field emission-scanning electron microscope. Our method will be useful for numerous applications, particularly in the biological sciences.

摘要

目前,通过等离子体聚合辅助的物理或化学气相沉积还无法制备独立的生物相容性薄膜,因为气态单体迄今为止仅用于制造聚合物膜。我们之前曾使用非气态单体通过等离子体聚合从溶液中发现了一种简单的制造独立薄膜的方法,并且聚氧乙烯(20)山梨聚糖单月桂酸酯制成的纳米服可使多细胞生物高度耐受高真空。在这里,我们报告了通过等离子体聚合从各种单体溶液制备的薄膜。薄膜在辐照部位具有平整的表面,并且与通过气相单体的气相沉积生产的薄膜相似。然而,它们还表现出独特的特性,例如无针孔的表面,透明度,溶剂稳定性,柔韧性以及从薄膜的辐照表面到未辐照表面的独特的面外分子密度梯度。此外,用薄膜覆盖蚊子幼虫可保护生物体的形状,并使它们在场发射扫描电子显微镜下的高真空条件下保持存活。我们的方法将在许多应用中非常有用,特别是在生物科学中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a5d/3827240/56bd6159f272/pone.0078563.g001.jpg

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