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还原诱导的苝二酰亚胺在水上的自推进振荡运动。

Reduction-Induced Self-Propelled Oscillatory Motion of Perylenediimides on Water.

作者信息

Holstein Lara Rae, Suematsu Nobuhiko J, Takeuchi Masayuki, Harano Koji, Banno Taisuke, Takai Atsuro

机构信息

Molecular Design and Function Group, National Institute for Materials Science (NIMS), 1-2-1 Sengen, Tsukuba, Ibaraki, 305-0047, Japan.

Department of Materials Science and Engineering, Faculty of Pure and Applied Sciences, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki, 305-8577, Japan.

出版信息

Angew Chem Int Ed Engl. 2024 Nov 11;63(46):e202410671. doi: 10.1002/anie.202410671. Epub 2024 Oct 2.

Abstract

The emergence of macroscopic self-propelled oscillatory motion based on molecular design has attracted continual attention in relation to autonomous systems in living organisms. Herein, a series of perylenediimides (PDIs) with various imide side chains was prepared to explore the impact of molecular design and alignment on the self-propelled motion at the air-water interface. When placed on an aqueous solution containing a reductant, a solid disk of neutral PDI was reduced to form the water-soluble, surface-active PDI dianion species, which induces a surface tension gradient in the vicinity of the disk for self-propelled motion. We found that centimeter-scale oscillatory motion could be elicited by controlling the supply rate of PDI dianion species through the reductant concentration and the structure of the imide side chains. Furthermore, we found that the onset and speed of the self-propelled motion could be changed by the crystallinity of PDI at the water surface. This design principle using π-conjugated molecules and their self-assemblies could advance self-propelled, non-equilibrium systems powered by chemical energy.

摘要

基于分子设计的宏观自驱动振荡运动的出现,在与生物体中的自主系统相关的研究中持续受到关注。在此,制备了一系列具有不同酰亚胺侧链的苝二酰亚胺(PDI),以探究分子设计和排列对气-水界面处自驱动运动的影响。当将中性PDI的固体圆盘置于含有还原剂的水溶液上时,它会被还原形成水溶性、表面活性的PDI二价阴离子物种,该物种在圆盘附近诱导表面张力梯度以实现自驱动运动。我们发现,通过控制还原剂浓度和酰亚胺侧链结构来调节PDI二价阴离子物种的供应速率,可以引发厘米级的振荡运动。此外,我们还发现,水面上PDI的结晶度可以改变自驱动运动的起始和速度。这种使用π共轭分子及其自组装的设计原理,有望推动由化学能驱动的自驱动非平衡系统的发展。

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