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首页> 外文期刊>Journal of solid state electrochemistry >Multi-shelled NiO hollow microspheres as bifunctional materials for electrochromic smart window and non-enzymatic glucose sensor
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Multi-shelled NiO hollow microspheres as bifunctional materials for electrochromic smart window and non-enzymatic glucose sensor

机译:多壳的NIO空心微球作为电致色智能窗和非酶葡萄糖传感器的双官能材料

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摘要

A multi-shelled NiO hollow sphere was synthesized by a facile glucose-mediated hydrothermal route. The carbonaceous microsphere was utilized as a sacrificial template for the formation of multi-shells. All the shells were formed by a single pyrolysis step. The multi-shelled hollow sphere can provide enhanced active surface area and additional reactive sites, which facilitate faster ion intercalation and deintercalation, and play key roles in electrochromic devices and sensing application, including glucose sensing. Herein, we employed the as-synthesized material for electrochromic devices. As expected, NiO multi-shelled hollow microspheres exhibit a superior transmission modulation (Delta T = 47%) and yield a coloration efficiency of similar to 85.3 cm(2) C-1, which is similar to 2.37 times higher than that of NiO microflakes which was synthesized in the absence of glucose. The geometry of the self-supported multi-shelled architecture ensures that the active faradaic sites can be in intimate contact with the electrolyte to enhance ionic diffusion. The observed colored and bleached switching time of multi-shelled hollow sphere is 6.7 s and 2.7 s respectively. A quasi-solid-state electrochromic device is also displayed with the aid of gel electrolyte with reversible color change from dark brown to transparent. Furthermore, the multi-shelled NiO displayed excellent catalytic activity towards non-enzymatic glucose sensing with a high sensitivity of 1646 +/- 5 mu A cm(-2) mM(-1) over a linear range of 2 mu M-2.6 mM with a lowest detection limit of 1.5 +/- 0.2 mu M. Analysis on blood serum as a real biological sample reflects the practicability of the fabricated sensor. Developing hollow structured multi-shelled materials based on metal oxides will pave the way to design advanced electrode materials for electrochromic smart windows and non-enzymatic glucose sensors.
机译:采用葡萄糖介导的水热法合成了多壳NiO空心球。碳质微球被用作多壳层形成的牺牲模板。所有的贝壳都是通过一个热解步骤形成的。多壳空心球可以提供增强的活性表面积和额外的反应位点,从而促进更快的离子插层和脱层,并在电致变色器件和传感应用中发挥关键作用,包括葡萄糖传感。在此,我们将合成的材料用于电致变色器件。正如预期的那样,NiO多壳空心微球表现出优越的透射调制(δT=47%),并产生类似于85.3 cm(2)C-1的着色效率,这类似于在没有葡萄糖的情况下合成的NiO微湖的2.37倍。自支撑多壳结构的几何形状确保了活性法拉第位点可以与电解质紧密接触,以增强离子扩散。观察到的多壳空心球的着色和漂白切换时间分别为6.7s和2.7s。在凝胶电解质的帮助下,还展示了一种准固态电致变色器件,该器件具有从深棕色到透明的可逆颜色变化。此外,多壳NiO对非酶葡萄糖传感显示出优异的催化活性,在2μM-2.6 mM的线性范围内具有1646+/-5μa cm(-2)mM(-1)的高灵敏度,最低检测限为1.5+/-0.2μM。对血清作为真实生物样品的分析反映了所制备传感器的实用性。开发基于金属氧化物的中空结构多壳材料将为设计用于电致变色智能窗和非酶葡萄糖传感器的先进电极材料铺平道路。

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