加氢脱氧
纳米材料基催化剂
催化作用
柴油
氧合物
化学
碳纤维
生物燃料
产量(工程)
航空生物燃料
化学工程
有机化学
材料科学
混溶性
乙醇
精炼(冶金)
tar(计算)
间歇式反应器
金属
镍
作者
Junwei Liao,Jiayu Wu,Shuting Jiang,Mingsi Wang,Yinyan Kong,Guanhua Shen,Jin Tan,Lianfen Chen,Minglei Lu
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2026-02-24
卷期号:40 (9): 4683-4692
标识
DOI:10.1021/acs.energyfuels.5c05829
摘要
The development of biomass-derived fuels presents a promising solution for mitigating the severe carbon emissions associated with fossil fuels. A key strategy involves the direct refining of aqueous-phase bioethanol into higher alcohols, which serves as key precursors for diesel blendstocks and biojet fuel. Herein, to enable the direct upgrading of aqueous ethanol, we developed carbon-encapsulated Ni nanocatalysts (Ni@C) with water resistance by pyrolyzing organic precursors under acid–base regulation. The catalytic coupling yields 46.5 C-mol % of higher alcohols, of which C 4 –C 7 and C 8 –C 16 alcohols constitutes 56.9% and 35.2% in product selectivity, respectively. Excellent miscibility with diesel is exhibited by C 4 –C 7 alcohols across a wide range of blending ratios. Furthermore, hydrodeoxygenation of C 8 –C 16 alcohols provides a direct route to biojet fuel. Results from experiment and characterization demonstrate that acid–base regulation effectively tunes the local electronic structure and carbon defects on the Ni@C nanocatalyst surface. The proposed approach allows for precise modulation of the dehydrogenation, aldol condensation, and hydrogenation steps in the Guerbet reaction pathway, which suppress carbon chain scission and enhance the yield of higher alcohols. Overall, this research offers a novel and feasible strategy to the sustainable synthesis of higher alcohols from bioethanol, producing products directly applicable as blending components and biojet fuel precursors.
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