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基于明胶的生物聚合物光波导的简易制造

Facile fabrication of gelatin-based biopolymeric optical waveguides.

作者信息

Manocchi Amy K, Domachuk Peter, Omenetto Fiorenzo G, Yi Hyunmin

机构信息

Department of Chemical and Biological Engineering, Tufts University, Medford, MA 02155, USA.

出版信息

Biotechnol Bioeng. 2009 Jul 1;103(4):725-32. doi: 10.1002/bit.22306.

DOI:10.1002/bit.22306
PMID:19360894
Abstract

The rapid development in optical detection techniques for sensing applications has led to an increased need for biocompatible, biodegradable, and disposable optical components. We present a controllable fabrication technique for an entirely biopolymeric planar optical waveguide via simple spin-coating. The refractive index difference, thermal responsive properties, and inherent biocompatibility of gelatin and agarose were exploited in the fabrication of thin, stacked films that efficiently guide light in a core layer with higher index of refraction. These planar waveguides were fabricated using a simple spin-coating technique, which resulted in controllable layer thicknesses and smooth layer interfaces. This technique, therefore, offers a path for routine engineering of biopolymer structures with contrasting refractive indices. The thermal stability of the gelatin core layer was improved using two crosslinkers; glutaraldehyde or microbial Transglutaminase. Light guiding in the core layer of the waveguide was demonstrated using a simple He-Ne laser setup. Guiding efficiency was further illustrated by directly embedding fluorescent markers within the core layer and detecting their spectral signature. Combined with the biopolymers' inherent biocompatibility and biodegradability, our simple strategy to fabricate disposable optical components holds the potential for the development of applications in biological sensing and implantable biomedical devices.

摘要

用于传感应用的光学检测技术的快速发展,导致对生物相容性、可生物降解和一次性光学组件的需求增加。我们通过简单的旋涂工艺,提出了一种用于完全生物聚合物平面光波导的可控制造技术。在制造薄的堆叠薄膜时,利用了明胶和琼脂糖的折射率差异、热响应特性和固有的生物相容性,这些薄膜能在具有较高折射率的芯层中有效地引导光。这些平面光波导是使用简单的旋涂技术制造的,这使得层厚度可控且层界面光滑。因此,该技术为具有不同折射率的生物聚合物结构的常规工程提供了一条途径。使用两种交联剂(戊二醛或微生物转谷氨酰胺酶)提高了明胶芯层的热稳定性。使用简单的氦氖激光装置展示了光波导芯层中的光导。通过直接将荧光标记物嵌入芯层并检测其光谱特征,进一步说明了引导效率。结合生物聚合物固有的生物相容性和生物降解性,我们制造一次性光学组件的简单策略具有开发生物传感和可植入生物医学设备应用的潜力。

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