Nguyen Thi Hai Quyen, Pelmuş Marius, Colomier Christopher, Gorun Sergiu M, Schlettwein Derck
Institute of Applied Physics and Laboratory of Materials Research, Justus-Liebig-University Gießen, Heinrich-Buff-Ring 16, 35392 Gießen, Germany.
Department of Chemistry and Biochemistry and Center for Functional Materials, Seton Hall University, 400 South Orange Ave, South Orange, NJ 07079, USA.
Phys Chem Chem Phys. 2020 Apr 15;22(15):7699-7709. doi: 10.1039/c9cp06709d.
The transport of both electrons and ions in organic mixed ionic and electronic conductors such as phthalocyanines, is essential to allow redox reactions of entire films and, hence, to impart electrochromism. Thin films of a new type, tetrakis-perfluoroisopropyl-perfluoro phthalocyanine, F40PcCu of different thicknesses were obtained via vapor deposition. The extent of the intermolecular coupling within the F40PcCu films established by van der Waals interactions was investigated by in situ optical spectroscopy during film growth. The transfer of electrons and diffusion of counter cations in these films, as well as their electrochromic performance were characterized by electrochemical and spectroelectrochemical measurements with an aqueous solution of KCl as electrolyte. A moderate degree of intermolecular interaction of the F40PcCu molecules in the solid state was observed, compared to non-fluoroalkylated perfluoro phthalocyanine, F16PcCu and octakis-perfluoroisopropyl-perfluorophthalocyanine, F64PcCu, which exhibit stronger and weaker coupling, respectively. The replacement of F by perfluoroisopropyl is, thereby, established as a valuable approach to tune this coupling of chromophores and, hence, the transport coefficients of electrons and ions in the solid films. Reversible changes of the films upon reduction and intercalation of K+ counter ions and re-oxidation and expulsion of the counter ions were confirmed by simultaneously measured optical absorption spectra. Thin films of F40PcCu showed a well-balanced, equally fast transport of electrons and ions. The films provided a fast and reversible switching process over at least 200 cycles indicating the stability of these materials.
在诸如酞菁类的有机混合离子与电子导体中,电子和离子的传输对于实现整个薄膜的氧化还原反应至关重要,进而赋予其电致变色特性。通过气相沉积获得了不同厚度的新型薄膜——四(全氟异丙基)全氟酞菁铜(F40PcCu)。在薄膜生长过程中,利用原位光谱学研究了由范德华相互作用建立的F40PcCu薄膜内部分子间耦合程度。以KCl水溶液为电解质,通过电化学和光谱电化学测量对这些薄膜中电子的转移、抗衡阳离子的扩散及其电致变色性能进行了表征。与分别表现出较强和较弱耦合的非氟烷基化全氟酞菁铜(F16PcCu)和八(全氟异丙基)全氟酞菁铜(F64PcCu)相比,观察到固态F40PcCu分子间存在适度的相互作用。由此确定,用全氟异丙基取代氟是调节发色团这种耦合以及固态薄膜中电子和离子传输系数的一种有价值的方法。通过同时测量的光吸收光谱证实了薄膜在K⁺抗衡离子还原和嵌入以及抗衡离子再氧化和排出时的可逆变化。F40PcCu薄膜表现出电子和离子传输平衡且同样快速的特性。这些薄膜在至少200个循环中提供了快速且可逆的切换过程,表明了这些材料的稳定性。