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用于可重新编程离子电子学的具有紫外线调节离子导电性的光离子水凝胶:逻辑处理与图像传感

An optoionic hydrogel with UV-regulated ion conductivity for reprogrammable iontronics: Logic processing and image sensing.

作者信息

Chen Jiehao, Huang Jiahe, Hu Yuhang

机构信息

The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.

The School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.

出版信息

Sci Adv. 2024 Jun 14;10(24):eadn0439. doi: 10.1126/sciadv.adn0439. Epub 2024 Jun 12.

Abstract

The development of smart hydrogels capable of actively controlling ion conductivity is of paramount importance for iontronics. Most current work in this field focuses on enhancing the hydrogels' ion conductivity. Few successes have been seen in achieving spatial regulation of ion flow through external control. Among various controls, light gives the best spatial and temporal resolution for practical iontronic applications. However, developing hydrogels that can generate drastic ion concentration change upon photoirradiation for tunable conductivity is challenging. Very few molecules can enable photoion generation, and most of them are hydrophobic and low quantum yield. Here, we present an optoionic hydrogel that uses triphenylmethane leuconitrile (TPMLN) for ultraviolet-regulated ion conductivity. Through postpolymerization TPMLN synthesizing, we can incorporate high concentration of the hydrophobic TPMLN in hydrogels without compromising the hydrogel's mechanical integrity. Upon light irradiation, the hydrogel's local conductivity can change an unprecedented 10-fold. We also demonstrated soft optoionic devices that are capable of logic processing and photo imaging.

摘要

开发能够主动控制离子电导率的智能水凝胶对离子电子学至关重要。该领域目前的大多数工作都集中在提高水凝胶的离子电导率上。通过外部控制实现离子流的空间调控鲜有成功案例。在各种控制方式中,光在实际离子电子应用中具有最佳的空间和时间分辨率。然而,开发在光照射下能产生剧烈离子浓度变化以实现可调电导率的水凝胶具有挑战性。能够实现光离子生成的分子非常少,而且它们大多具有疏水性且量子产率低。在此,我们展示一种光离子水凝胶,它使用三苯基甲烷隐腈(TPMLN)来实现紫外线调节的离子电导率。通过后聚合TPMLN合成,我们可以在不损害水凝胶机械完整性的情况下,将高浓度的疏水性TPMLN掺入水凝胶中。在光照射下,水凝胶的局部电导率可发生前所未有的10倍变化。我们还展示了能够进行逻辑处理和光成像的柔性光离子器件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a07/11168472/3dda58e83a17/sciadv.adn0439-f1.jpg

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