镍
材料科学
木质素
化学工程
氢
制氢
催化作用
化学
冶金
有机化学
工程类
作者
Mohmmad Khalid,Biswajit Samir De,Samaneh Shahgaldi
出处
期刊:
[Elsevier BV]
日期:2024-09-13
卷期号:6: 100074-100074
被引量:17
标识
DOI:10.1016/j.decarb.2024.100074
摘要
Biomass electrooxidation has garnered much attention in recent years, owing to its potential to circumvent greenhouse gas emissions. Substituting the sluggish water oxidation with biomass oxidizable species such as lignin at anode is thermodynamically more favorable, enabling energy efficient hydrogen production and concomitant fine chemicals. The present study shows the organosolv lignin electrooxidation in an additively manufactured 3D printed reactor (3DPR) consisting of platinized nickel foam (PtNF) as anode and cathode and compared with commercial hardware electrolyzer (CHE). The electrolysis of organosolv lignin in 3DPR outperformed CHE by achieving 1.23 times higher current at an applied voltage range from 0 to 2.2 V with a membrane (Nafion 115) interposed between anode and cathode under a continuous flow of lignin feed at the anode. The chronoamperometry study reveals a mixture of diverse aromatic compounds, including vanillic acid, syringic acid, 3,5-dimethoxy-4-hydroxyacetophenone, 2-hydroxyacetophenone, 4-ethycathecol, and 2,6-dimethoxyphenol in anolyte, and sinapic acid and vanillin acetate in catholyte. Thus, realizing renewable biomass electrolysis in the 3DPR is an intriguing strategy for the co-production of hydrogen and fine aromatic chemicals. • Lignin electrooxidized by platinized nickel Foam using as anode and cathode. • Lignin electrooxidation conducted in a 3D printed reactor. • Lignin electrooxidation required lower overvoltage to produce hydrogen. • Fine chemicals generated along with hydrogen upon lignin electrolysis.
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