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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Bifunctional aligned hexagonal/amorphous tungsten oxide core/shell nanorod arrays with enhanced electrochromic and pseudocapacitive performance
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Bifunctional aligned hexagonal/amorphous tungsten oxide core/shell nanorod arrays with enhanced electrochromic and pseudocapacitive performance

机译:双功能对齐的六方/无定形钨氧化物芯/壳纳米棒阵列,具有增强的电致变色和假性涂膜性能

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摘要

Tungsten oxide possesses electrochromic and pseudocapacitive properties; integrating these two functions into a single device with improved comprehensive performance has become a hot research topic. In this paper, bifunctional aligned hexagonal/amorphous tungsten oxide core/shell nanorod arrays (denoted as h@a-WNRAs) were fabricated on fluorine-doped tin oxide substrates by a two-step process involving hydrothermal treatment and spin coating to provide enhanced electrochromic and capacitive properties. The first step involved synthesis of single-crystalline hexagonal tungsten trioxide (h-WO3) nanorod cores. The second step coated amorphous WOx (a-WOx) shells with thicknesses of 2-8 nm on the surface of the h-WO3 cores. The results indicated that the a-WOx shells strongly affected the electrochromic and pseudocapacitive properties of the heterostructure because of their high specific surface area and porous internal structure. Compared with that of pure WO3 nanorod arrays, the optimized nanostructured h@a-WNRAs showed marked improvement of electrochromic and pseudocapacitive performance. In terms of electrochromic properties, the optimized h@a-WNRAs realized a substantial optical modulation (67.7%), short response times (15 and 21 s), high coloration efficiency (101 cm(2) C-1 at 800 nm), and good cycling stability. Meanwhile, the optimized h@a-WNRAs also displayed promising pseudocapacitive properties, including a high specific capacitance (885.8 F g(-1) at 1 A g(-1)), enhanced rate capability, good cycling efficiency (91.8%), and good specific capacitance retention (57.8% after 2000 cycles). The h@a-WNRA heterostructure obtained by this facile approach represents a new idea for the preparation of bifunctional materials with excellent electrochromic and pseudocapacitive properties.
机译:氧化钨具有电致变色和假胶质容貌;将这两种功能集成到一个具有改进的综合性能的单个设备中已成为一个热门的研究主题。本文通过涉及水热处理和旋转涂层的两步方法,在氟掺杂的锡氧化物基材上制造双功能排列的六方/无定形氧化物芯/壳纳米峰阵列(表示为H @ A-WNRAS),以提供增强的电致变色和电容性。第一步涉及单晶六方钨三氧化物(H-WO3)纳米芯芯的合成。在H-WO3芯的表面上涂覆具有厚度为2-8nm的无定形WOX(A-WOX)壳。结果表明,由于其高比表面积和多孔内部结构,A-Wox壳强烈影响异质结构的电致变色和假致特性。与纯WO3纳米座阵列相比,优化的纳米结构H @ A-WNRA显示出显着改善的电致变色和假壳性性能。在电致变色特性方面,优化的H @ A-WNRA实现了大量光学调制(67.7%),短响应时间(15和21秒),高着色效率(101cm(2)C-1在800nm处),和良好的循环稳定性。同时,优化的H @ A-WNRA也显示出具有高特定电容(885.8V(-1)的优化H @ A-Wnras,增强速率能力,循环效率良好(91.8%),和2000次循环后的良好特异性电容保留(57.8%)。通过该容器方法获得的H @ A-Wnra异质结构代表了制备具有优异电致变色和假胶质容貌的双官能材料的新思想。

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