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三维氧化钕-硒化镍修饰氮掺杂碳的制备及其对甲醇和尿素的电催化氧化

Preparation of 3D NdO-NiSe-Modified Nitrogen-Doped Carbon and Its Electrocatalytic Oxidation of Methanol and Urea.

作者信息

Zhang Simin, Chang Ying, Xu Aiju, Jia Jingchun, Jia Meilin

机构信息

Inner Mongolia Key Laboratory of Green Catalysis and Inner Mongolia Collaborative Innovation Center for Water Environment Safety, College of Chemistry and Environmental Science, Inner Mongolia Normal University, Hohhot 010022, China.

出版信息

Nanomaterials (Basel). 2023 Feb 22;13(5):814. doi: 10.3390/nano13050814.

Abstract

Developing renewable energy sources and controlling water pollution are critical but challenging problems. Urea oxidation (UOR) and methanol oxidation (MOR), both of which have high research value, have the potential to effectively address wastewater pollution and energy crisis problems. A three-dimensional neodymium-dioxide/nickel-selenide-modified nitrogen-doped carbon nanosheet (NdO-NiSe-NC) catalyst is prepared in this study by using mixed freeze-drying, salt-template-assisted technology, and high-temperature pyrolysis. The NdO-NiSe-NC electrode showed good catalytic activity for MOR (peak current density ~145.04 mA cm and low oxidation potential ~1.33 V) and UOR (peak current density ~100.68 mA cm and low oxidation potential ~1.32 V); the catalyst has excellent MOR and UOR characteristics. The electrochemical reaction activity and the electron transfer rate increased because of selenide and carbon doping. Moreover, the synergistic action of neodymium oxide doping, nickel selenide, and the oxygen vacancy generated at the interface can adjust the electronic structure. The doping of rare-earth-metal oxides can also effectively adjust the electronic density of nickel selenide, allowing it to act as a cocatalyst, thus improving the catalytic activity in the UOR and MOR processes. The optimal UOR and MOR properties are achieved by adjusting the catalyst ratio and carbonization temperature. This experiment presents a straightforward synthetic method for creating a new rare-earth-based composite catalyst.

摘要

开发可再生能源和控制水污染是至关重要但具有挑战性的问题。尿素氧化(UOR)和甲醇氧化(MOR)都具有很高的研究价值,有潜力有效解决废水污染和能源危机问题。本研究通过混合冷冻干燥、盐模板辅助技术和高温热解制备了一种三维二氧化钕/硒化镍修饰的氮掺杂碳纳米片(NdO-NiSe-NC)催化剂。NdO-NiSe-NC电极对MOR(峰值电流密度145.04 mA cm且低氧化电位1.33 V)和UOR(峰值电流密度100.68 mA cm且低氧化电位1.32 V)表现出良好的催化活性;该催化剂具有优异的MOR和UOR特性。由于硒化物和碳掺杂,电化学反应活性和电子转移速率增加。此外,氧化钕掺杂、硒化镍和界面处产生的氧空位的协同作用可以调节电子结构。稀土金属氧化物的掺杂还可以有效调节硒化镍的电子密度,使其作为助催化剂,从而提高UOR和MOR过程中的催化活性。通过调节催化剂比例和碳化温度可实现最佳的UOR和MOR性能。本实验提出了一种简单的合成方法来制备新型稀土基复合催化剂。

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