木质生物质水热气化制氢的N, s掺杂分层多孔碳负载Pt催化剂的研究

IF 6.4 Next Energy Pub Date : 2025-07-01 Epub Date: 2025-02-27 DOI:10.1016/j.nxener.2025.100257
Shahbaz Hussain , Sibel Irmak , Muhammad Usman Farid
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引用次数: 0

摘要

氢是一种很有前途的零碳排放清洁燃料;使用它所产生的唯一副产品就是水。目前的大规模制氢方法既昂贵又不符合可持续性标准。寻找可替代但更便宜的可持续的氢气生产方法是很重要的,催化剂在这一过程中起着关键作用。本研究旨在开发基于层次多孔碳(HPCs)的催化剂,以提高木质纤维素生物质水热气化制氢的产量。HPCs是由广泛使用的废物、森林木质生物质和家禽羽毛合成的,其方法很有前途(使用前驱体的可溶解部分而不是直接碳化它们的固体形式,进行原位杂原子掺杂和使用成气盐提高碳的孔隙度等)。在形成气体的盐NaHCO3的存在下,由生物质/鸡毛混合物制备的HPC是最有前途的碳,因为它具有高孔隙结构,孔径范围从~ 65 nm到~ 1.8 µm, 80%的孔隙约为200-450 nm。在该碳上沉积Pt颗粒制备的催化剂的比表面积为3200 m2/g,平均孔径为2.3 nm。另一方面,在没有NaHCO3的情况下制备的HPC的比表面积为2900 m2/g,平均孔径为1.8 nm。NaHCO3/Pt催化剂的产氢活性为23.81 ml H2/mg Pt,是所有催化剂中最高的。这是由于高度多孔结构和碳网络中钠或含钠物质(如Na2O)的存在。本研究的发现有可能为基于hpcs的多功能催化剂的不同反应开辟新的催化机会。
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Developing N, S-doped hierarchical porous carbon-supported Pt catalysts for hydrothermal gasification of woody biomass to hydrogen
Hydrogen is a promising clean fuel with 0 carbon emission; only byproduct released from its use is water. The current large-scale hydrogen production methods are expensive and do not meet sustainability criteria. Finding alternative but cheaper sustainable ways for hydrogen production is important, and the catalyst plays a key role in this process. This study was designed to develop hierarchical porous carbons (HPCs)-based catalysts to enhance hydrogen production yield from lignocellulosic biomass by hydrothermal gasification. HPCs were synthesized from widely available waste materials, forest-based woody biomass, and poultry feathers with a promising approach (use of solubilized fractions of the precursors rather than direct carbonization of their solid forms, performing in-situ heteroatom doping and enhancing the porosity of the carbon by using a gas-forming salt, etc.). The HPC prepared from biomass/chicken feather mixture in the presence of a gas-forming salt, NaHCO3, was the most promising carbon because of its high porosity structure with pore size ranging from ∼65 nm to ∼1.8 µm, and the 80% of the pores was around 200–450 nm. The specific surface area of the catalyst prepared by deposition of Pt particles on this carbon was found to be 3200 m2/g with an average pore size of 2.3 nm. On the other hand, the HPC prepared in the absence of NaHCO3 had 2900 m2/g surface area and 1.8 nm average pore size. The hydrogen production activity of HPC-with NaHCO3/Pt catalyst was found to be 23.81 ml H2/mg Pt, which was the highest activity among the catalysts tested. This was attributed to the highly porous structure and the presence of sodium or sodium-containing species (e.g., Na2O) in the carbon network. The findings of this study have the potential to open new catalytic opportunities for different reactions using HPCs-based multifunctional catalysts.
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