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基于超分子紫精镊子的增强型电致变色智能窗

Enhanced Electrochromic Smart Windows Based on Supramolecular Viologen Tweezers.

作者信息

Otaegui Jaume Ramon, Mena Silvia, Dorsainvil Jovelt M, Guirado Gonzalo, Ruiz-Molina Daniel, Hernando Jordi, Barnes Jonathan C, Roscini Claudio

机构信息

Departament de Química, Universitat Autònoma de Barcelona, Edifici C/n Campus UAB, Cerdanyola del Vallès 08193, Spain.

Instituto de Microelectrónica de Barcelona (IMB-CNM, CSIC), Cerdanyola del Vallès 08193, Spain.

出版信息

Chem Mater. 2025 Mar 12;37(6):2220-2229. doi: 10.1021/acs.chemmater.4c03174. eCollection 2025 Mar 25.

Abstract

Extending the spectral response of viologen-based electrochromic devices to the near-infrared region is essential to enhance their performance for smart window applications. Although synthetic and formulation modifications have been proposed to achieve this goal, these strategies always come at the expense of deteriorating the electrochromic behavior of the system. To overcome this limitation, herein we exploited the supramolecular chemistry of viologen molecular tweezers, which undergo an intramolecular dimerization process upon reduction that leads to broad light absorption through the visible and near-infrared spectra. We observed this behavior to take place at low concentrations in a variety of electrolytic media, including solid-state ionogels that could be applied to the fabrication of electrochromic devices. Better spectral response, lower operation voltage, and higher stability were measured for these devices relative to analogous systems based on viologen monomers. As a result, when used as electrochromic smart windows, the viologen tweezer-based devices exhibited enhanced modulation of solar heat gain with reduced energy consumption, thereby demonstrating the potential of viologen supramolecular chemistry to rationally improve the performance of electrochromic devices.

摘要

将基于紫精的电致变色器件的光谱响应扩展到近红外区域对于提高其在智能窗应用中的性能至关重要。尽管已经提出了合成和配方修改来实现这一目标,但这些策略总是以牺牲系统的电致变色行为为代价。为了克服这一限制,我们在此利用了紫精分子镊子的超分子化学,其在还原时会发生分子内二聚化过程,从而导致在可见光和近红外光谱范围内产生广泛的光吸收。我们观察到这种行为在各种电解质介质中的低浓度下都会发生,包括可应用于电致变色器件制造的固态离子凝胶。相对于基于紫精单体的类似系统,这些器件具有更好的光谱响应、更低的工作电压和更高的稳定性。因此,当用作电致变色智能窗时,基于紫精镊子的器件在降低能耗的情况下对太阳热增益表现出增强的调制,从而证明了紫精超分子化学在合理改善电致变色器件性能方面的潜力。

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