Pradhan Lingaraj, Kamila Swagatika, Padhy Ganeswara, Das Debi Prasad, Jena Bikash Kumar
CSIR-Institute of Minerals and Materials Technology, Bhubaneswar, 751013, India.
Academy of Scientific & Innovative Research (AcSIR), Ghaziabad, 201002, India.
Small. 2024 Aug;20(34):e2401238. doi: 10.1002/smll.202401238. Epub 2024 Apr 11.
Multifunctional devices integrated with electrochromic and supercapacitance properties are fascinating because of their extensive usage in modern electronic applications. In this work, vanadium-doped cobalt chloride carbonate hydroxide hydrate nanostructures (V-CH NSs) are successfully synthesized and show unique electrochromic and supercapacitor properties. The V-CH NSs material exhibits a high specific capacitance of 1219.9 F g at 1 mV s with a capacitance retention of 100% over 30 000 CV cycles. The electrochromic performance of the V-CH NSs material is confirmed through in situ spectroelectrochemical measurements, where the switching time, coloration efficiency (CE), and optical modulation (∆T) are found to be 15.7 and 18.8 s, 65.85 cm C and 69%, respectively. A coupled multilayer artificial neural network (ANN) model is framed to predict potential and current from red (R), green (G), and blue (B) color values. The optimized V-CH NSs are used as the active materials in the fabrication of flexible/wearable electrochromic micro-supercapacitor devices (FEMSDs) through a cost-effective mask-assisted vacuum filtration method. The fabricated FEMSD exhibits an areal capacitance of 47.15 mF cm at 1 mV s and offers a maximum areal energy and power density of 104.78 Wh cm and 0.04 mW cm, respectively. This material's interesting energy storage and electrochromic properties are promising in multifunctional electrochromic energy storage applications.
集成了电致变色和超级电容特性的多功能器件因其在现代电子应用中的广泛用途而备受关注。在这项工作中,成功合成了钒掺杂的碳酸氢氧化钴水合物纳米结构(V-CH NSs),并展示出独特的电致变色和超级电容器特性。V-CH NSs材料在1 mV s时表现出1219.9 F g的高比电容,在30000次循环伏安循环中电容保持率为100%。通过原位光谱电化学测量证实了V-CH NSs材料的电致变色性能,其中开关时间、着色效率(CE)和光学调制(∆T)分别为15.7和18.8 s、65.85 cm C和69%。构建了一个耦合多层人工神经网络(ANN)模型,以根据红色(R)、绿色(G)和蓝色(B)颜色值预测电位和电流。通过一种经济高效的掩膜辅助真空过滤方法,将优化后的V-CH NSs用作活性材料来制备柔性/可穿戴电致变色微型超级电容器器件(FEMSDs)。所制备的FEMSD在1 mV s时的面积电容为47.15 mF cm,最大面积能量密度和功率密度分别为104.78 Wh cm和0.04 mW cm。这种材料有趣的能量存储和电致变色特性在多功能电致变色能量存储应用中具有广阔前景。