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Li~+- and Eu~(3+)-Doped Poly( ε-caproIactone)/Siloxane Biohybrid Electrolytes for Electrochromic Devices

机译:用于电致变色器件的Li〜+和Eu〜(3+)掺杂的聚(ε-己内酯)/硅氧烷生物混合电解质

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The sol—gel process has been successfully combined with the "mixed cation" effect to produce novel luminescent and ion conducting biohybrids composed of a diurethane cross-linked poly(£-caprolactone) (PCL530)/siloxane hybrid network (PCL stands for the poly(ε-caprolactone) biopolymer and 530 is the average molecular weight in gmol~(-1) ) doped with a wide range of concentrations of lithium and europium triflates (LiCF3SO3 and Eu(CF3SO3)3, respectively) (molar ratio of ca. 50:50). The hybrid samples are all semicrystalline: whereas at n = 52.6 and 27.0 (n, composition, corresponds to the number of (C(=O)(CH2)5O) repeat units of PCL(530) per mixture of Li~+ and Eu ~(3+) ions) a minor proportion of crystalline PCL(530) chains is present, at n = 6.1, a new crystalline phase emerges. The latter electrolyte is thermally stable up to 220 °C and exhibits the highest conductivity over the entire range of temperatures studied (3.7 x 10~(-7) and 1.71 x 10~(-4) S cm~(-1) at 20 and 102 °C, respectively). According to infrared spectroscopic data, major modifica- tions occur in terms of hydrogen bonding interactions at this composition. The electrochemical stability domain of the biohybrid sample with n = 27 spans more than 7 V versus Li/Li~+. This sample is a room temperature white light emitter. Its emission color can be easily tuned across the Commission Internationale d'Eclairage (CIE) chromaticity diagram upon simply changing the excitation wavelength. Preliminary tests performed with a prototype electrochromic device (ECD) comprising the sample with n = 6.1 as electrolyte and WO3 as cathodically coloring layer are extremely encouraging. The device exhibits switching time around 50 s, an optical density change of 0.15, good open circuit memory under atmospheric conditions (ca. 1 month) and high coloration efficiency (577 cm~2 C~(-1) in the second cycle).
机译:溶胶-凝胶工艺已成功地与“混合阳离子”效应相结合,产生了由二氨基甲酸酯交联的聚(ε-己内酯)(PCL530)/硅氧烷杂化网络组成的新型发光和离子导电生物杂化物(PCL代表聚(ε-己内酯)生物聚合物和530是平均分子量,单位为gmol〜(-1)),掺杂了各种浓度的锂和euro三氟甲磺酸盐(分别为LiCF3SO3和Eu(CF3SO3)3)(摩尔比约为50:50)。混合样品都是半结晶的:而在n = 52.6和27.0时(n,组成对应于每种Li〜+和Eu混合物的PCL(530)的(C(= O)(CH2)5O)重复单元的数量〜(3+)离子)存在少量PCL(530)晶体链,在n = 6.1时,出现了新的晶体相。后者在高达220°C的温度下具有热稳定性,并且在所研究的整个温度范围内(3.7 x 10〜(-7)和1.71 x 10〜(-4)S cm〜(-1)在20°C时具有最高的电导率。和102°C)。根据红外光谱数据,在这种成分上,氢键相互作用发生了重大变化。与Li / Li〜+相比,n = 27的生物杂交样品的电化学稳定性域跨度超过7V。该样品是室温白光发射器。只需更改激发波长,就可以轻松地在国际照明委员会(CIE)色度图上调整其发射颜色。用原型电致变色设备(ECD)进行的初步测试非常令人鼓舞,该设备包含n = 6.1的样品作为电解质和WO3作为阴极着色层。该器件的开关时间约为50 s,光密度变化为0.15,在大气条件下(约1个月)具有良好的开路记忆性,并且着色效率高(第二个周期为577 cm〜2 C〜(-1))。

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