反应性(心理学)
催化作用
化学
光离子化
热分解
纳米颗粒
分解
化学工程
钝化
量子化学
氧化物
光化学
纳米技术
材料科学
有机化学
电离
反应机理
离子
病理
工程类
医学
替代医学
图层(电子)
作者
Souvick Biswas,Dababrata Paul,Chao He,Nureshan Dias,Musahid Ahmed,Michelle L. Pantoya,Ralf I. Kaiser
标识
DOI:10.1021/acs.jpclett.3c02532
摘要
High energy density aluminum nanoparticles (AlNPs) have been at the center of attention as additives to hydrocarbon jet fuels like exo-tetrahydrodicyclopentadiene (JP-10, C10H16) aiming at the superior performance of volume-limited air-breathing propulsion systems. However, a fundamental understanding of the ignition and combustion chemistry of JP-10 in the presence of AlNPs has been elusive. Exploiting an isomer-selective comprehensive identification of the decomposition products in a newly designed high-temperature chemical microreactor coupled to vacuum ultraviolet photoionization, we reveal an active low-temperature heterogeneous surface chemistry commencing at 650 K involving the alumina (Al2O3) shell. Contrary to textbook knowledge of an "inactive alumina surface", this unconventional reactivity, where oxygen is transferred from alumina to JP-10, leads to generating cyclic, oxygenated organics like phenol (C6H5OH) and 2,4-cyclopentadiene-1-one (C5H4O)─key tracers of an alumina-mediated interfacial chemistry. This counterintuitive reactivity transforms our knowledge of the (catalytic) processes of alumina-coated AlNPs on the molecular level.
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