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自行推进的涂有樟脑的过滤纸在双分支水道中的备用路线选择。

Alternate Route Selection of Self-Propelled Filter Papers Impregnated with Camphor for Two-Branched Water Channels.

机构信息

Department of Mathematical and Life Sciences, Graduate School of Integrated Sciences for Life, Hiroshima University, 1-3-1 Kagamiyama, Higashi-Hiroshima 739-8526, Japan.

出版信息

Langmuir. 2021 Jun 15;37(23):7039-7042. doi: 10.1021/acs.langmuir.1c00644. Epub 2021 May 28.

Abstract

The route selection of self-propelled filter papers impregnated with camphor for two-branched water channels was investigated. The two-branched water channel was composed of a stem channel and two branch channels, and the branch channels were connected to the stem channel at a junction. When a single camphor paper reached the junction from the stem channel, it selected one of the two routes equivalently. Three or five camphor papers which were placed on a stem channel exhibited either alternate or random route selection depending on the characteristic length between the leading and following papers, . That is, the alternate route selection of the camphor papers for the two-branched water channels was observed at ≤ 25 mm. By contrast, the alternate route selection was broken at > 25 mm. The physicochemical meaning of the threshold value, ∼ 26 mm, between the alternate and random route selections was discussed based on the experimental results. In addition, the distribution length of camphor molecules developed from the leading camphor paper and the change in the spatial gradient of surface tension around the junction supports the value of . These results suggest that autonomous phenomena using inanimate self-propelled objects are important to understand collective motion in living organisms.

摘要

研究了自行推进的浸渍樟脑的滤纸在双分叉水道中的路径选择。双分叉水道由一个干渠和两个支渠组成,支渠在连接处与干渠相连。当单个樟脑纸从干渠到达连接处时,它会在两条路径中选择一条。当三个或五个樟脑纸放在干渠上时,它们会根据先导纸和后续纸之间的特征长度()表现出交替或随机的路径选择。也就是说,在 ≤ 25mm 时观察到双分叉水道中樟脑纸的交替路径选择。相比之下,在 > 25mm 时,交替路径选择被打破。基于实验结果,讨论了交替和随机路径选择之间的阈值(∼26mm)的物理化学意义。此外,从先导樟脑纸发展而来的樟脑分子的分布长度以及连接处周围表面张力空间梯度的变化支持了这个值。这些结果表明,使用无生命的自行推进物体的自主现象对于理解生物体中的集体运动很重要。

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