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Published on: February 27, 2019
Complementary Asymmetric Fluorinated Viologen and Conjugated Phenyl Viologen for Black Electrochromic Devices with
Zekuo Lv1, Leipeng Zhang1, Lei Xu2
1Center for Composite Materials and Structure, Harbin Institute of Technology, Harbin150001, PR China.
Abstract:
Black electrochromic devices (ECDs) that offer broadband visible-light absorption and a visually neutral dark state are highly attractive for smart windows, displays, and adaptive light-management systems. However, achieving high-quality black electrochromism with high optical contrast, fast switching, and long-term cycling stability remains challenging, primarily owing to the unbalanced spectral absorption and radical-cation dimerization issues inherent in conventional viologen-based systems. Herein, we address the limitations of conventional viologen-based electrochromic devices via a strategy integrating molecular design and spectral superposition engineering. A fluorinated benzyl viologen derivative, 1-(4-fluorobenzyl)-1'-(3,5-bis(trifluoromethyl)benzyl)-4,4'-bipyridinium di(tetrafluoroborate) (TFBV), is designed to suppress radical-cation aggregation and improve redox stability. To compensate for the weak absorption of TFBV in the 450-550 nm region, a cyanophenyl-substituted viologen (1,1'-bis(4-cyanophenyl)-4,4'-bipyridinium bis(tetrafluoroborate) (CPV)) with extended π-conjugation is introduced as a complementary chromophore, enabling red-shifted and balanced visible-light absorption. Benefiting from the synergistic absorption of TFBV and CPV, the optimized ECD exhibits a high bleached-state transmittance of 81.1%, a low colored-state transmittance of 5.2%, and a large optical contrast of 75.9% across the visible region. The device also shows rapid switching with coloration and bleaching times of 4.4 and 4.1 s, respectively, a high coloration efficiency of 218.65 cm2 C-1, and excellent cycling stability with 99.8% contrast retention after 10,000 cycles. Furthermore, a prototype smart window based on TFBV/CPV exhibits effective light and heat regulation. This work presents an effective molecular design strategy for stable, fast-response black ECDs and expands the potential of viologen-based materials for energy-saving smart windows.
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