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Adsorption, Desorption, and Displacement Kinetics of H2O and CO2 on Forsterite, Mg2SiO4(011)

机译:镁橄榄石Mg2SiO4(011)上H2O和CO2的吸附,解吸和置换动力学

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摘要

We have examined the adsorbatesubstrate interaction kinetics of CO2 and H2O on a natural forsterite crystal surface, Mg2SiO4(011), with 10-15% Fe2+ substituted for Mg2+. We used temperature-programmed desorption and molecular beam techniques to determine the adsorption, desorption, and displacement kinetics for H2O and CO2. Neither CO2 nor H2O has distinct submonolayer desorption peaks, but instead both have a broad continuous desorption feature that evolves smoothly into multilayer desorption. Inversion of the monolayer coverage spectra for both molecules reveals that the corresponding binding energies for H2O are greater than those for CO2 on all sites. The relative strength of these interactions is the dominant factor in the competitive adsorption and displacement kinetics. In experiments in which the two adsorbates are codosed, H2O preferentially binds to the highest-energy binding sites available and displaces CO2. The onset of significant CO2 displacement by H2O occurs between 65 and 75 K.
机译:我们已经研究了天然镁橄榄石晶体表面Mg2SiO4(011)上用10-15%的Fe2 +代替Mg2 +的CO2和H2O的吸附物-底物相互作用动力学。我们使用程序升温脱附和分子束技术来确定H2O和CO2的吸附,解吸和置换动力学。 CO2和H2O都没有明显的亚单分子层解吸峰,但都具有宽广的连续解吸特征,可以平稳地演变为多层解吸。两种分子的单层覆盖光谱的倒置表明,在所有位点上,H2O的相应结合能均大于CO2的结合能。这些相互作用的相对强度是竞争吸附和置换动力学的主要因素。在共吸附两种吸附物的实验中,H2O优先与可用的最高能量结合位点结合并置换CO2。 H2O引起的大量CO2置换开始于65至75 K之间。

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