Österholm Anna M, Nhon Linda, Shen D Eric, Dejneka Abigail M, Tomlinson Aimée L, Reynolds John R
School of Chemistry and Biochemistry, School of Materials Science and Engineering, Center for Organic Photonics and Electronics, Georgia Tech Polymer Network, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Department of Chemistry/Biochemistry, University of North Georgia, Dahlonega, Georgia 30597, USA.
Mater Horiz. 2022 Jan 4;9(1):252-260. doi: 10.1039/d1mh01136g.
In this short review, we provide an overview of our efforts in developing a family of anodically coloring electrochromic (EC) molecules that are fully transparent and colorless in the charge neutral state, and that can rapidly switch to a vibrantly colored state upon oxidation. We employ molecules with reduced conjugation lengths to center the neutral state absorption of the electrochrome in the ultraviolet, as desired for highly transparent and colorless materials. Oxidation creates radical cations that absorb light in the visible and near infrared regions of the electromagnetic spectrum, thus providing a host of accessible colors. Combining a density functional theory (DFT) computational approach fed back to the synthetic effort, target molecules are proposed, synthesized and studied, directing us to develop a complete color palette based on these high contrast ACE molecules. Utilizing pendant phosphonic acid binding substituents in concert with high surface area mesoporous indium tin oxide (ITO) electrodes, the electrochromes can be distributed throughout the oxide film, bringing high extent of light absorption and color density.
在本简短综述中,我们概述了我们在开发一类阳极着色电致变色(EC)分子方面所做的努力。这些分子在电荷中性状态下完全透明且无色,氧化后可迅速转变为鲜艳的有色状态。我们采用共轭长度较短的分子,使电致变色材料的中性态吸收集中在紫外区域,这是高透明度和无色材料所需要的。氧化产生的自由基阳离子在电磁光谱的可见光和近红外区域吸收光,从而提供多种可实现的颜色。结合反馈到合成工作中的密度泛函理论(DFT)计算方法,我们提出、合成并研究了目标分子,引导我们基于这些高对比度的阳极着色电致变色(ACE)分子开发出完整的调色板。通过将侧链膦酸结合取代基与高表面积的介孔氧化铟锡(ITO)电极配合使用,电致变色材料可以分布在整个氧化膜中,实现高程度的光吸收和颜色密度。