Physical Meanings of Fractal Behaviors of Water in Aqueous and Biological Systems

S. Yagihara, R. Kita, N. Shinyashiki, M. Fukuzaki, K. Shoji, Tetsuya Saito, H. Masuda, T. Kawaguchi, Hironobu Saito, Y. Maruyama, Shinichiro Hiraiwa, K. Asami
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引用次数: 1

Abstract

Dynamics of Hydrogen Bonding Network (HBN) relating to macroscopic properties of hydrogen bonding liquids were observed as the largest relaxation process by dielectric spectroscopy measurements. In the cases of water and water rich mixtures including biological systems, a GHz frequency relaxation process appearing at around 20GHz with the relaxation time of 8.2ps is generally observed at 25°C. The GHz frequency process can be explained as a rate process of exchanges in HB and the rate becomes higher with increasing HB density. In the present work, we analyzed the GHz frequency process and clarified physical meanings of the fractal nature of water structures in various aqueous systems. Dynamic behaviors of HBN were characterized by a combination of the average relaxation time and the distribution of the relaxation time. The fractal analysis offered an available approach to both solution and dispersion systems with characterization of the aggregation or dispersion state of water molecules. In the case of polymer-water mixtures, the HBN and polymer networks well penetrate each other. However, the HBN were segmented and isolated more by dispersed and aggregated particles in the case of dispersion systems. These HBN fragments were dominantly evaluated by smaller values of the fractal dimension obtained from the fractal analysis, but it is also related with other two parameters. The fractal analysis is now one of the most effective tools to understand molecular mechanism of HBN in aqueous complex materials including biological systems.
水和生物系统中水的分形行为的物理意义
电介质谱测量发现,与氢键液体宏观性质相关的氢键网络动力学是最大的弛豫过程。在包括生物系统在内的水和富水混合物中,在25°C时,通常观察到20GHz左右出现GHz频率弛豫过程,弛豫时间为8.2ps。GHz频率过程可以解释为HB中的交换速率过程,并且随着HB密度的增加,交换速率变高。在本工作中,我们分析了GHz频率过程,阐明了各种水体系中水结构分形性质的物理意义。HBN的动力学行为由平均弛豫时间和弛豫时间的分布相结合来表征。分形分析为表征水分子聚集或分散状态的溶液和分散系统提供了一种有效的方法。在聚合物-水混合物的情况下,HBN和聚合物网络可以很好地相互渗透。而在分散体系下,HBN更多的是被分散和聚集的颗粒所分割和分离。这些HBN片段主要由分形分析得到的较小的分形维数来评价,但它也与其他两个参数有关。分形分析是目前了解HBN在包括生物系统在内的水复合材料中的分子机理的最有效工具之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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