A multifunctional PANI-wrapped Bi2WO6 2D-nanoplates with in-situ grown BiOCl nanocomposite for electrochemical seawater splitting, supercapacitor, and photocatalytic applications

IF 6.9 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Veerappan Kavinkumar , Atul Verma , Kandasamy Jothivenkatachalam , Yen-Pei Fu
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Abstract

Hydrogen has the potential to play a critical role in the energy transition by decarbonizing hard-to-electrify areas and facilitating storage. Sea water electrolysis is an approach with the greatest potential for this transition to large-scale green hydrogen production using renewable energy owing to the availability of seawater instead of requiring chemical electrolytes. In this study, a novel nanocomposite comprising Bi2WO6, PANI, and in-situ grown BiOCl (BW-BIC-PANI) was synthesized via a hydrothermal route followed by a chemical oxidative polymerization route. The BW-BIC-PANI nanocomposite is intended for multifunctional use as a high-performance electrocatalyst for hydrogen evolution reactions in various electrolyte mediums, supercapacitors, and photocatalysis. The electrocatalytic performance of BW-BIC-PANI200 electrode in the HER was accompanied by a high catalytic current density of −101.7, −104.7, and −98.4 mA cm−2 and also lower Tafel slope values of 58.48, 123, and 188 mV dec-1 under acidic, alkaline, and seawater mediums, respectively. The seawater water splitting for HER utilizing BW-BIC-PANI200 composites electrode, at a current density of 10 and 40 mA cm−2 at the fixed applied potential, depicted a durability of 12 and 24 h, respectively. The BW-BIC-PANI200 composite has a specific GCD capacitance of 156F g−1 at 1 Ag−1. Also, GCD stability was achieved after 4000 cycles with minimal capacitance loss. Furthermore, the BW-BIC-PANI200 composite shows high photocatalytic activity, degrading MO aqueous dye up to 71.75 % after 80 min of illumination. The findings clearly show that the BW-BIC-PANI200 nanocomposite might serve as a potential multifunctional electrocatalyst for efficient water electrolysis, supercapacitors, and photocatalysis.

Abstract Image

Abstract Image

具有原位生长BiOCl纳米复合材料的多功能聚苯胺包裹Bi2WO6 2d纳米板用于电化学海水分裂,超级电容器和光催化应用
通过使难以通电的地区脱碳和促进储存,氢有可能在能源转型中发挥关键作用。海水电解是利用可再生能源向大规模绿色制氢过渡的一种最有潜力的方法,因为海水的可用性而不需要化学电解质。本研究通过水热法和化学氧化聚合法合成了一种由Bi2WO6、聚苯胺和原位生长的BiOCl组成的新型纳米复合材料(bw - bic -聚苯胺)。BW-BIC-PANI纳米复合材料是一种多功能的高性能电催化剂,用于各种电解质介质、超级电容器和光催化中的析氢反应。BW-BIC-PANI200电极在HER中的电催化性能,在酸性、碱性和海水介质下的催化电流密度分别为−101.7、−104.7和−98.4 mA cm−2,Tafel斜率分别为58.48、123和188 mV dec1。利用BW-BIC-PANI200复合材料电极,在固定施加电位下,在电流密度为10和40 mA cm−2的情况下,用于HER的海水分离的耐久性分别为12和24 h。BW-BIC-PANI200复合材料在1ag−1时的比GCD电容为156F g−1。此外,在4000次循环后,以最小的电容损耗实现了GCD稳定性。此外,BW-BIC-PANI200复合材料表现出较高的光催化活性,在80 min的光照下,对MO水性染料的降解率高达71.75 %。研究结果清楚地表明,BW-BIC-PANI200纳米复合材料可能作为高效水电解、超级电容器和光催化的潜在多功能电催化剂。
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来源期刊
Applied Surface Science
Applied Surface Science 工程技术-材料科学:膜
CiteScore
12.50
自引率
7.50%
发文量
3393
审稿时长
67 days
期刊介绍: Applied Surface Science covers topics contributing to a better understanding of surfaces, interfaces, nanostructures and their applications. The journal is concerned with scientific research on the atomic and molecular level of material properties determined with specific surface analytical techniques and/or computational methods, as well as the processing of such structures.
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