Enhanced hydrogen production through methane dry reforming: Evaluating the effects of promoter-induced variations in reducibility, basicity, and crystallinity on Ni/ZSM-5 catalyst performance

IF 7.1 Q1 ENERGY & FUELS
Kirankumar J. Chaudhary , Ahmed S. Al-Fatesh , Ahmed A. Ibrahim , Ahmed I. Osman , Anis H. Fakeeha , Mansour Alhoshan , Naif Alarifi , Ala’a H. Al-Muhtaseb , Rawesh Kumar
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Abstract

The pursuit of sustainable hydrogen production through the conversion of methane (CH4) and carbon dioxide (CO2), two prevalent greenhouse gases, is advanced by utilizing cost-effective Ni-supported catalysts within the framework of methane dry reforming. Utilizing crystalline porous zeolite, specifically ZSM-5, enhances the dispersion of nickel (Ni) across the catalyst surface and within its pore channels, hence increasing catalytic efficiency. Herein, we investigate the impact of incorporating various promoters (Ce, Cs, Cu, Fe, Sr) into the 5Ni/ZSM-5 catalyst, systematically examining how these modifications influence the reducibility, basicity, and crystallinity of the catalyst’s active sites, thereby affecting its hydrogen yield potential.

Our findings reveal that the inferior activity of Cu-promoted catalysts is due to the depletion of basic sites and larger NiO crystallite size (than rest-promoted catalysts). The introduction of Fe results in a highly dispersed Ni with a stable NiFe phase, but dilution of active sites results in low hydrogen yield. Conversely, Sr promotion enhances the basicity and accessibility of NiO active sites both on the surface and within the pore channels of the zeolite, leading to a notable hydrogen yield of 28 % at 700℃ after 300 min. Furthermore, the addition of 2 wt% ceria significantly optimizes Ni dispersion within the pore channels and surges the maximum population of basic sites (including the presence of very strong basic sites), achieving 35 % hydrogen yield at 700 °C and ∼ 70 % at 800℃. This investigation underscores the critical role of promoter-induced modifications in enhancing catalyst performance for hydrogen production, contributing to the development of more efficient and sustainable energy conversion technologies.

Abstract Image

通过甲烷干重整提高制氢能力:评估促进剂引起的还原性、碱性和结晶度变化对 Ni/ZSM-5 催化剂性能的影响
在甲烷干重整的框架内,利用具有成本效益的镍支撑催化剂,通过甲烷(CH4)和二氧化碳(CO2)这两种普遍存在的温室气体的转化,实现可持续制氢。利用结晶多孔沸石(特别是 ZSM-5)可增强镍(Ni)在催化剂表面及其孔道内的分散,从而提高催化效率。在此,我们研究了在 5Ni/ZSM-5 催化剂中加入各种促进剂(Ce、Cs、Cu、Fe、Sr)的影响,系统地探讨了这些改性如何影响催化剂活性位点的还原性、碱性和结晶度,从而影响其产氢潜力。铁的引入使镍高度分散,形成稳定的镍铁相,但活性位点的稀释导致氢气产量低。相反,锶的促进则增强了沸石表面和孔道内氧化镍活性位点的碱性和可接近性,从而在 300 分钟后,700℃ 时的产氢量显著提高到 28%。此外,添加 2 wt% 的铈可显著优化孔道内镍的分散,并增加碱性位点的最大数量(包括存在非常强的碱性位点),从而在 700 ℃ 时获得 35% 的氢产率,在 800 ℃ 时达到 70%。这项研究强调了促进剂诱导的改性在提高催化剂制氢性能方面的关键作用,有助于开发更高效、更可持续的能源转换技术。
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来源期刊
CiteScore
8.80
自引率
3.20%
发文量
180
审稿时长
58 days
期刊介绍: Energy Conversion and Management: X is the open access extension of the reputable journal Energy Conversion and Management, serving as a platform for interdisciplinary research on a wide array of critical energy subjects. The journal is dedicated to publishing original contributions and in-depth technical review articles that present groundbreaking research on topics spanning energy generation, utilization, conversion, storage, transmission, conservation, management, and sustainability. The scope of Energy Conversion and Management: X encompasses various forms of energy, including mechanical, thermal, nuclear, chemical, electromagnetic, magnetic, and electric energy. It addresses all known energy resources, highlighting both conventional sources like fossil fuels and nuclear power, as well as renewable resources such as solar, biomass, hydro, wind, geothermal, and ocean energy.
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