Zhang Xiaojuan, Chen Yuanfu, Chen Minglong, Wang Bin, Yu Bo, Wang Xinqiang, Zhang Wanli, Yang Dongxu
School of Electronic Science and Engineering, and State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science and Technology of China, Chengdu 610054, PR China.
Chengdu Kanghong Pharmaceutical Group Co., Ltd, Chengdu 610054, PR China.
Nanoscale. 2020 Feb 14;12(6):3777-3786. doi: 10.1039/c9nr09460a. Epub 2020 Jan 29.
As a rate-determining step, electrocatalytic water oxidation acts a pivotal role in the water splitting process. As a consequence, it is of great significance to explore low-cost, efficient and durable electrocatalysts for the oxygen evolution reaction (OER) to promote electrocatalytic splitting water. Herein, for the first time, FeNi-modified FeO/NiO/MoO heterogeneous nanoparticles immobilized on N, P co-doped CNT matrix materials (FNM/NPCNT) are synthesized via a facile solid-phase grinding of the precursor, composed of nickel hexacyanoferrate/phosphomolybdic acid/CNT, and subsequently pyrolyzing under nitrogen atmosphere without any further post-processing. Due to its significant enhancement of the charge transfer efficiency and prevention of the metallic-based catalysts from being corroded, the as-prepared FNM/NPCNT hybrid electrocatalyst shows a high OER activity with a low overpotential of 282 mV vs. RHE at 10 mA cm and a small Tafel slope of 46.2 mV dec in an alkaline electrolyte. Moreover, the as-prepared FNM/NPCNT hybrid delivers a large mass activity of 327.6 A g at the potential of 1.7 V and excellent stability (more than 20 h). This study opens up a new approach to design and synthesize non-precious transition metal-based composites immobilized N, P co-doped CNT materials as OER catalysts with high efficiency and long-term stability for promoting water splitting.
作为速率决定步骤,电催化水氧化在水分解过程中起着关键作用。因此,探索低成本、高效且耐用的析氧反应(OER)电催化剂以促进电催化分解水具有重要意义。在此,首次通过由铁氰化镍/磷钼酸/碳纳米管组成的前驱体的简便固相研磨,随后在氮气气氛下热解而无需任何进一步的后处理,合成了固定在N、P共掺杂碳纳米管基质材料(FNM/NPCNT)上的FeNi修饰的FeO/NiO/MoO多相纳米颗粒。由于其显著提高了电荷转移效率并防止金属基催化剂被腐蚀,所制备的FNM/NPCNT混合电催化剂在碱性电解质中表现出高OER活性,在10 mA cm时相对于可逆氢电极(RHE)的过电位低至282 mV,塔菲尔斜率小至46.2 mV dec。此外,所制备的FNM/NPCNT混合物在1.7 V电位下具有327.6 A g的大质量活性和出色的稳定性(超过20小时)。本研究开辟了一种新方法,用于设计和合成固定在N、P共掺杂碳纳米管材料上的非贵金属基复合材料作为OER催化剂,以高效且长期稳定地促进水分解。