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负载于γ-AlO上的化学计量比控制的铁和镍非贵金属催化剂用于制备绿松石氢和碳纳米管

Stoichiometric-Ratio-Controlled Fe and Ni Non-Noble Metal Catalysts Supported on γ-AlO for Turquoise Hydrogen and Carbon Nanotubes Production.

作者信息

Rajpoot Aakash, Ahmad Khan Afaq, Mohan Indra, Sengupta Siddhartha, Ahmad Ejaz

机构信息

GreenCat Laboratory, Department of Chemical Engineering, Indian Institute of Technology (Indian School of Mines), Dhanbad, 826004, India.

Naresh Vashisht Centre for Hydrogen and CCUS Technologies, Indian Institute of Technology (Indian School of Mines), Dhanbad, 826004, India.

出版信息

Chemphyschem. 2025 Jan 14;26(2):e202400670. doi: 10.1002/cphc.202400670. Epub 2024 Nov 11.

Abstract

Herein, we synthesized a series of catalysts comprising iron (Fe), and nickel (Ni) supported on γ-AlO nano-powder (Fe-Ni/γ-AlO) by controlling the stoichiometric ratio of the metals through the facile co-precipitation method. The ratio of Fe and Ni on the γ-AlO support varied from 0 to 70 weight percent (wt %). The freshly prepared catalysts phase, structure, and crystallinity exhibited variability as the Fe and Ni stoichiometric ratios were altered. The catalyst demonstrated effective performance in methane cracking, producing turquoise hydrogen and carbon nanotubes (CNTs) using a temperature-programmed reactor coupled with mass spectrometry. It was observed that the Fe3Ni4 catalyst, comprising 30 % Fe and 40 % Ni, exhibited a maximum methane conversion rate of 85 % and a hydrogen yield of 72.55 %. Moreover, the values of turnover frequency (2.38 min) indicated that the Fe3Ni4 had a better production rate and was consistent with the conversion process throughout the reaction. The structural attributes of the spent catalysts were examined, revealing variations in the lateral length, uniformity, and diameters (~33 to 56 nm) of the produced Carbon Nanotubes (CNTs) when transitioning from catalyst Fe0Ni7 to Fe7Ni0. The investigation underscored the significance of metal stoichiometrically controlled catalysts and their catalytic efficacy in methane cracking applications.

摘要

在此,我们通过简便的共沉淀法控制金属的化学计量比,合成了一系列负载在γ - AlO纳米粉末上的铁(Fe)和镍(Ni)催化剂(Fe - Ni/γ - AlO)。γ - AlO载体上Fe和Ni的比例从0到70重量百分比(wt %)不等。随着Fe和Ni化学计量比的改变,新制备的催化剂的相、结构和结晶度呈现出变化。该催化剂在甲烷裂解中表现出有效性能,使用程序升温反应器与质谱联用,生成了蓝绿色氢气和碳纳米管(CNT)。据观察,包含30 % Fe和40 % Ni的Fe3Ni4催化剂表现出最高的甲烷转化率85 %和氢气产率72.55 %。此外,周转频率值(2.38 min)表明Fe3Ni4具有更好的生产速率,并且在整个反应过程中与转化过程一致。对用过的催化剂的结构属性进行了检查,结果显示,从催化剂Fe0Ni7转变为Fe7Ni0时,所生成的碳纳米管(CNT)的横向长度、均匀性和直径(约33至56 nm)存在变化。该研究强调了化学计量控制的金属催化剂及其在甲烷裂解应用中的催化效能的重要性。

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