首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Boost-up electrochemical performance of MOFs via confined synthesis within nanoporous carbon matrices for supercapacitor and oxygen reduction reaction applications
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Boost-up electrochemical performance of MOFs via confined synthesis within nanoporous carbon matrices for supercapacitor and oxygen reduction reaction applications

机译:纳米多孔碳基质内的纳米碳矩阵中的MOF的促进电化学性能,用于超级电容器和氧还原反应应用

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Utilization of metal-organic frameworks (MOFs) for electrochemical applications is significantly limited by their insulating nature and mechanical/chemical instability. One promising approach for the deployment of conventional MOFs in electrochemical applications is to fabricate MOF-based hybrids (MBHs) with conductive materials, which facilitate effective electron transfer via conductive additives between MOFs. Herein, we present a facile method for effective filling of Cu- and Ni-HKUST-1 (Hong Kong University of Science and Technology, and denoted hereafter as Cu-/Ni-MOF) inside 3D ordered mesoporous carbon (24 nm, mC), 3D ordered N-doped macroporous carbon (300 nm, NMC), and 3D ordered macroporous carbon (300 nm, MC), denoted as MOF@mC, MOF@NMC, and MOF@MC, respectively. The MOF@carbon matrix (MOF@CM) composites were intended for use as electrodes for electrical double layer capacitors (EDLCs) and as electrocatalysts for the oxygen reduction reaction (ORR). The EDLC performance of MOFs can be significantly improved by facilitating electron transfer through 3D conductive CM, reducing the electron pathway within the insulating MOF using a CM with small pores, and the choice of metal center with pronounced faradaic nature. Ni-MOF@mC exhibited superior specific surface area normalized areal capacitance (26.5 F cm(-2)), exceeding most carbons and MOF-based EDLCs and outstanding long-term stability (91%@5000(th)). Furthermore, Cu-MOF@mC resulted in pronounced ORR activities, excellent methanol tolerance, and long-term stability. It is clearly demonstrated that conventional MOFs can be utilized for EDLCs and the ORR when conjugated with a 3D-connected nano-sized CM.
机译:用于电化学应用的金属 - 有机框架(MOF)的利用受到它们绝缘性和机械/化学不稳定的显着限制。在电化学应用中部署传统MOF的一种有希望的方法是制造具有导电材料的MOF基杂交体(MBHS),其促进了MOF之间的导电添加剂的有效电子转移。在此,我们提出了一种有效填充Cu-and Ni-HKust-1(香港科学和技术大学,并在3D订购的中孔碳内表示为Cu-/ Ni-Mof)(24 nm,MC) ,3D有序的N掺杂的大孔碳(300nm,NMC)和3D有序的大孔碳(300nm,MC),分别表示为MOF @ MC,MOF @ NMC和MC @ MC。 MOF @碳基质(MOF @ cm)复合材料旨在用作用于电双层电容器(EDLC)的电极,以及用于氧还原反应的电催化剂(ORR)。通过通过3D导电厘米促进电子传递,可以显着改善MOF的EDLC性能,使用小孔的厘米减少绝缘MOF内的电子通路,以及用发音的佛教性质的金属中心的选择。 NI-MOF @ MC表现出卓越的特定表面积归一化的面积(26.5F cm(-2)),超过大多数碳和基于MOF的EDLC,并且出色的长期稳定性(91%(5000))。此外,Cu-Mof @ MC导致发音的ORR活性,优异的甲醇耐受性和长期稳定性。清楚地证明,当与3D连接的纳米大小的CM缀合时,可以用于EDLC和ORR的传统MOF。

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