Kathryn Narkin, Heather R Legg, Glenna J Brown, Khaled El-Shazly, Thaddeus D Martin, Mia Jarrell, Laura R McCunn, Zhijian Chen, Carol A Parish
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引用次数: 0
摘要
本研究采用实验和理论相结合的方法,对生物质热解过程中产生的一种环状含氧烃--2-环戊烯酮的热分解进行了研究。气相热解是在一个脉冲式微管反应器中于 1000 至 1400 K 的温度下进行的。在低温氩气基质中分离出产物后,用傅里叶变换红外光谱对其进行了鉴定。确定的产物如下:一氧化碳、乙烯酮、丙烯酮、乙烯基乙炔、乙烯、丙烯、丙烯醛、乙炔、丙炔和丙炔基。计算结果确定了三种不同的分解途径,其中涉及一个 H 原子迁移,并产生丙-2-烯基酮(途径 1)、丙-1-烯基酮(途径 2)和丙-2-烯基酮的第二种构象(途径 3)。第四种分解途径是两个 C-C 键同时断裂,形成高能环丙烯酮中间体,进一步反应生成乙烯、乙炔和一氧化碳。最后,确定了形成丙烯醛和乙炔的第五种途径,该途径通过一个多步骤机制进行,并通过计算确定了从 2-环戊烯酮到 3-环戊烯酮的相互转化,但没有在实验中观察到。
The thermal decomposition of 2-cyclopentenone, a cyclic oxygenated hydrocarbon that occurs in the pyrolysis of biomass, has been studied in a combined experimental and theoretical approach. Gas-phase pyrolysis was performed at temperatures ranging from 1000 to 1400 K in a pulsed, microtubular reactor. Products were identified by FTIR spectroscopy following their isolation in a low-temperature argon matrix. The following products were identified: carbon monoxide, ketene, propenylketene, vinylacetylene, ethylene, propene, acrolein, acetylene, propyne, and propargyl radical. Computational results identify three different decomposition channels involving a H atom migration, and producing prop-2-enylketene (Pathway 1), prop-1-enylketene (Pathway 2), and a second conformation of prop-2-enylketene (Pathway 3). A fourth decomposition pathway involves simultaneous rupture of two C-C bonds forming a high energy cyclopropenone intermediate that further reacts to form ethylene, acetylene, and carbon monoxide. Finally, a fifth pathway to the formation of acrolein and acetylene was identified that proceeds via a multistep mechanism, and an interconversion from 2-cyclopentenone to 3-cyclopentenone was identified computationally, but not observed experimentally.