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首页> 外文期刊>Journal of Colloid and Interface Science >Quaternary (Fe/Ni)(P/S) mesoporous nanorods templated on stainless steel mesh lead to stable oxygen evolution reaction for over two months
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Quaternary (Fe/Ni)(P/S) mesoporous nanorods templated on stainless steel mesh lead to stable oxygen evolution reaction for over two months

机译:在不锈钢网上模板化的四季度(Fe / Ni)(p / s)介孔纳米棒导致稳定的氧气进化反应超过两个月

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摘要

Synthesis of mesoporous (Fe/Ni)(P/S) dendritic nanorods on commercial 304L stainless steel mesh (SSM) was accomplished by initial anodic oxidation and subsequent co-sulfuration/phosphorization process. The mesoporous (Fe/Ni)(P/S) dendritic nanorods were obtained as a freestanding and stable catalyst for oxygen evolution reaction (OER). The mechanism of formation of mesoprous structure with nanorods is due to in-situ removal of Cr atoms (from the hard template of SSM) while the O-2 bubbles released during OER served as dynamic bubble template (soft template). The as-prepared sample exhibited overpotentials of 173 mV at 10 mA cm(-2) and 270 mV at 100 mA cm(-2), which exceeded those that were recently reported using surface modified stainless steel-based catalysts for OER in alkaline condition. Moreover, the (Fe/Ni)(P/S) nanorods showed a remarkable Tafel slope of 65.7 mV dec(-1) with stable activity beyond two months with only 2,5% fluctuation. The above outstanding performance could be attributed to the unique morphology with highly exposed active sites and the control of electronic structure by co-treatment with P and S. This work presents an efficient way to modify SSM for use as an inexpensive and durable OER catalyst. (C) 2019 Elsevier Inc. All rights reserved.
机译:通过初始阳极氧化氧化和随后的共硫化/磷化方法完成商业304L不锈钢网(SSM)的介孔(Fe / Ni)(P / S)树突纳米棒的合成。获得介孔(Fe / Ni)(P / S)树突式纳米杆作为自由率和稳定的氧化反应催化剂(Oer)。纳米棒形成含有纳米杆的机制是由于原位去除Cr原子(来自SSM的硬模板),而OER期间释放的O-2气泡作为动态气泡模板(软模板)。制备的样品在10mA cm(-2)和270mV的100mA cm(-2)下表现出173mV的过电位,其超过最近使用表面改性的不锈钢基催化剂在碱性条件下的oer 。此外,(Fe / Ni)(P / S)纳米棒显示出65.7mV DEC(-1)的显着塔拉多斜率,稳定的活性超过2个月,其波动仅为2,5%。上述出色的性能可能归因于具有高度暴露的有源网站的独特形态以及通过与P和S共同处理控制电子结构的控制。这项工作提出了一种改进SSM作为廉价且耐用的OER催化剂的有效方法。 (c)2019 Elsevier Inc.保留所有权利。

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