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揭示磺化黑色素的自由基性质

Shedding Light on the Free Radical Nature of Sulfonated Melanins.

作者信息

Paulin J V, Batagin-Neto A, Meredith P, Graeff C F O, Mostert A B

机构信息

School of Sciences, Postgraduate Program in Science and Technology of Materials (POSMAT), São Paulo State University (UNESP), Bauru, Brazil.

Department of Physics, Swansea University, Singleton Park, Swansea SA2 8PP, United Kingdom.

出版信息

J Phys Chem B. 2020 Nov 19;124(46):10365-10373. doi: 10.1021/acs.jpcb.0c08097. Epub 2020 Nov 5.

DOI:10.1021/acs.jpcb.0c08097
PMID:33153262
Abstract

Melanin, an important class of natural pigment found in the human body, has stood out as a promising bioelectronic material due to its rather unique collection of electrical properties and biocompatibility. Among the available melanin derivatives, the sulfonated form has proven to not only be able to produce homogeneous device quality thin films with excellent adhesion, even on hydrophobic surfaces, but also to act as an ion to electron transducing element. It has recently been shown that the transport physics (and dominant carrier generation) may be related to a semiquinone free radical species in these materials. Hence, a better understanding of the paramagnetic properties of sulfonated derivatives could shed light on their charge transport behavior and thus enable improvement in regard to use in bioelectronics. Motivated by this question, in this work, different sulfonated melanin derivatives were investigated by hydration-controlled, continuous-wave X-band electron paramagnetic resonance spectroscopy and electronic structure calculations. Our results show that sulfonated melanin behaves similarly to non-functionalized melanin, but demonstrates a less pronounced response to humidity vis-à-vis standard melanin. We thus speculate on the structural and charge transport behavior in light of these differences with a view to further engineering structure-property relationships.

摘要

黑色素是人体中发现的一类重要天然色素,由于其独特的电学性质和生物相容性,已成为一种很有前景的生物电子材料。在现有的黑色素衍生物中,磺化形式已被证明不仅能够制备出具有优异附着力的均匀器件质量薄膜,即使在疏水表面上也是如此,而且还能作为离子到电子的转换元件。最近的研究表明,这些材料中的输运物理(以及主要载流子的产生)可能与半醌自由基物种有关。因此,更好地了解磺化衍生物的顺磁性质可以揭示它们的电荷传输行为,从而有助于改进其在生物电子学中的应用。受此问题的启发,在这项工作中,通过水合控制的连续波X波段电子顺磁共振光谱和电子结构计算,对不同的磺化黑色素衍生物进行了研究。我们的结果表明,磺化黑色素的行为与未功能化的黑色素相似,但相对于标准黑色素,其对湿度的响应不太明显。因此,我们根据这些差异推测其结构和电荷传输行为,以期进一步构建结构-性能关系。

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Shedding Light on the Free Radical Nature of Sulfonated Melanins.揭示磺化黑色素的自由基性质
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