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Characterization of Bio-Inspired Electro-Conductive Soy Protein Films

机译:生物启发电导大豆蛋白膜的表征

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摘要

Protein-based conductive materials are gaining attention as alternative components of electronic devices for value-added applications. In this regard, soy protein isolate (SPI) was processed by extrusion in order to obtain SPI pellets, subsequently molded into SPI films by hot pressing, resulting in homogeneous and transparent films, as shown by scanning electron microscopy and UV-vis spectroscopy analyses, respectively. During processing, SPI denatured and refolded through intermolecular interactions with glycerol, causing a major exposition of tryptophan residues and fluorescence emission, affecting charge distribution and electron transport properties. Regarding electrical conductivity, the value found (9.889 × 10−4 S/m) is characteristic of electrical semiconductors, such as silicon, and higher than that found for other natural polymers. Additionally, the behavior of the films in contact with water was analyzed, indicating a controlled swelling and a hydrolytic surface, which is of great relevance for cell adhesion and spreading. In fact, cytotoxicity studies showed that the developed SPI films were biocompatible, according to the guidelines for the biological evaluation of medical devices. Therefore, these SPI films are uniquely suited as bioelectronics because they conduct both ionic and electronic currents, which is not accessible for the traditional metallic conductors.
机译:基于蛋白质的导电材料是作为增值应用的电子设备的替代组件的关注。在这方面,通过挤出处理大豆蛋白分离物(SPI)以获得SPI颗粒,随后通过热压模塑成SPI膜,导致均匀且透明的薄膜,如通过扫描电子显微镜和UV-Vis光谱分析所示。分别。在加工过程中,SPI通过与甘油的分子间相互作用变性并重折叠,导致色氨酸残留物和荧光发射的主要曝光,影响电荷分布和电子传输性能。关于电导率,找到的值(9.889×10-4 s / m)是电气半导体的特征,例如硅,高于其他天然聚合物的电气硅。另外,分析了与水接触的薄膜的行为,表明受控溶胀和水解表面,这对于细胞粘附和扩散具有很大的相关性。事实上,细胞毒性研究表明,根据医疗器械的生物学评估指导,发达的SPI薄膜是生物相容的。因此,这些SPI薄膜是独特的作为生物电体化,因为它们进行离子和电子电流,这对于传统的金属导体不可访问。

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