Framework iron (Fe3+) species in silicalite-1 stabilize PdOx for efficient methane combustion at low temperatures

催化作用 化学 甲烷 催化燃烧 吸附 氧气 沸石 无机化学 过渡金属 烧结 燃烧 化学工程 多相催化 傅里叶变换红外光谱 活性氧 活动中心 氧化钛 化学计量学 甲烷厌氧氧化 反应机理 红外光谱学 活动站点 漫反射红外傅里叶变换
作者
Ubong Jerom Etim,Peng Bai,Waheed Iqbal,Ziyi Zhong
出处
期刊:Journal of Environmental Management [Elsevier BV]
卷期号:402: 128967-128967
标识
DOI:10.1016/j.jenvman.2026.128967
摘要

Supported palladium (Pd) catalysts are known for their exceptional catalytic activity in methane combustion; however, they often undergo rapid deactivation due to sintering under practical reaction conditions. This study aims to develop highly active and stable catalysts for CH 4 combustion by investigating the effect of guest elements within silicalite-1 (S-1) zeolite as supports for Pd. Various transition metals (TMs) were introduced into the S-1 gel to modify its structural properties. The TMs were incorporated into both framework and extra-framework positions, as demonstrated for iron (Fe) and titanium (Ti), resulting in the formation of FeS-1 and TS-1, respectively. The structures were confirmed by Fourier transform infrared (FTIR) and ultraviolet-visible diffused reflectance (UV-vis DR) spectroscopy. Following Pd impregnation, the resulting Pd/FeS-1 and Pd/TS-1 exhibited high activity in CH 4 combustion. Compared to 1Pd/S-1, both 1Pd/FeS-1 and 1Pd/TS-1 achieved excellent low-temperature catalytic performance (T 90 < 400 °C), along with high reaction rates, turnover frequency (TOF) and stability. Characterization of the catalysts confirms the stabilizing effects of Fe and Ti on Pd species, primarily attributed to the formation of PdO x nanoclusters. Fe 3+ maintained PdO x in a more oxidized state, facilitated the activation of gas-phase oxygen, and provided anchoring sites for CH 4 activation into CH 3 ∗ , which combined with activated oxygen species. The reaction follows the Langmuir-Hinshelwood (L-H) mechanism, in which both CH 4 and oxygen are first adsorbed on the catalyst surface. Adsorbed and activated CH 4 species are sequentially oxidized by active oxygen species, leading to the formation of chemisorbed CO species, which are transformed into CO 2 and H 2 O as the final products. • Efficient and stable low-temperature CH 4 combustion is studied. • Transition metals (TMs) are incorporated into silicalite-1 as support for Pd catalysts. • TM n + species in silicalite-1 modify Pd species. • Fe 3+ and Ti 3+ species are incorporated into the framework of silicalite-1. • 1Pd/FeS-1excels, achieving T 90 of ∼320 °C.
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