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超薄还原氧化石墨烯包裹的自支撑双金属硫化钴镍-碳纳米纤维:一种用于水分解的高效且稳健的双功能电催化剂。

Ultrathin rGO-wrapped free-standing bimetallic CoNiS-carbon nanofibers: an efficient and robust bifunctional electrocatalyst for water splitting.

作者信息

Ranjith Kugalur Shanmugam, Kwak Cheol Hwan, Ghoreishian Seyed Majid, Im Ji Sun, Huh Yun Suk, Han Young-Kyu

机构信息

Department of Energy and Material Engineering, Dongguk University, Seoul 04620, Republic of Korea.

出版信息

Nanotechnology. 2020 Apr 17;31(27):275402. doi: 10.1088/1361-6528/ab8086. Epub 2020 Mar 17.

Abstract

Electrochemical water splitting represents an ideal strategy for producing clean hydrogen as an energy carrier that serves as an alternative to fossil fuels. As an effective method for hydrogen production, an efficient inexpensive multifunctional electrocatalyst with high durability is designed. Herein, we describe the heterostructural design of a three-dimensional catalytic network with self-embedded CoNiS nanograins grown on electrospun carbon nanofibers (CoNiS-CNFs) with anchored thin-layer reduced graphene oxide. This is achieved via facile electrospinning followed by carbonization, low-temperature sulfidation, and surface functionalization. As a bifunctional catalyst, CoNiS-CNFs exhibited robust high activity toward the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in an alkaline medium. The anchored ultrathin graphene oxide layer promoted the stability and durability of the catalytic network with an efficient path for the transportation of electrons. The rGO-anchored CoNiS-CNFs yielded overpotential values of 228 mV and 205 mV for the HER and OER, respectively, that drives a current density of 20 mA cm in an alkaline medium. Notably, the excellent electrochemical properties are attributed to the functional effect of the CoNiS on the CNF network. The ultrathin feature of rGO improved the durability of the catalytic network. Moreover, using the rGO-anchored CoNiS-CNFs as a cathode and anode in a two-electrode water splitting system required a cell voltage of only 1.55 V to reach a current density of 10 mA cm. These CNFs exhibited outstanding durability for 48 h. The present work offers new insight for the design of a catalytic network with a non-noble metal catalyst that exhibits excellent electrocatalytic activity and durability on the metal sulfides in overall water splitting.

摘要

电化学水分解是生产清洁氢气的理想策略,氢气作为一种能量载体,可替代化石燃料。作为一种有效的制氢方法,设计了一种具有高耐久性的高效廉价多功能电催化剂。在此,我们描述了一种三维催化网络的异质结构设计,该网络具有自嵌入的CoNiS纳米颗粒,生长在电纺碳纳米纤维(CoNiS-CNFs)上,并锚定有薄层还原氧化石墨烯。这是通过简便的静电纺丝,随后进行碳化、低温硫化和表面功能化来实现的。作为一种双功能催化剂,CoNiS-CNFs在碱性介质中对析氢反应(HER)和析氧反应(OER)表现出强大的高活性。锚定的超薄氧化石墨烯层通过有效的电子传输路径促进了催化网络的稳定性和耐久性。rGO锚定的CoNiS-CNFs在碱性介质中驱动20 mA cm电流密度时,HER和OER的过电位分别为228 mV和205 mV。值得注意的是,优异的电化学性能归因于CoNiS对CNF网络的功能作用。rGO的超薄特性提高了催化网络的耐久性。此外,在两电极水分解系统中使用rGO锚定的CoNiS-CNFs作为阴极和阳极,仅需1.55 V的电池电压即可达到10 mA cm的电流密度。这些CNFs在48小时内表现出出色的耐久性。目前的工作为设计具有非贵金属催化剂的催化网络提供了新的见解,该网络在全水分解中对金属硫化物表现出优异的电催化活性和耐久性。

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