2015Energy & FuelsRequires access

CO2 and H2S Adsorption on γ-Al2O3-Supported Lanthanum Oxide

Benjamin Feist, Josephine Mary Hill

Open publisher page 14 citations

Abstract

The use of high temperatures (>873 K) for desulfurization of syngas has the potential to significantly increase the efficiency of gasification processes. Rare earth oxides are effective adsorbents at high temperatures but expensive. In this work, lanthanum oxide at low weight loadings (2.5–7.5 wt %) is supported on γ-Al 2 O 3 to more efficiently use lanthanum oxide for hot gas desulfurization. The adsorbents are characterized with CO 2 adsorption and tested in a fixed-bed reactor for H 2 S capture at 873 K over multiple cycles. The interaction between lanthanum oxide and the support varied with loading, and regeneration with humidified argon is better than with dilute oxygen. Although the capacity per gram of lanthanum is higher for supported lanthanum oxide, these adsorbents are not selective for the adsorption of H 2 S in the presence of CO 2, CO, and CH 4 likely as a result of site competition with CO 2 and H 2 O.

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What this paper is about

The use of high temperatures (>873 K) for desulfurization of syngas has the potential to significantly increase the efficiency of gasification processes. Rare earth oxides are effective adsorbents at high temperatures but expensive. In this work, lanthanum oxide at low weight loadings (2.5–7.5 wt %) is supported on γ-Al 2 O 3 to more efficiently use lanthanum oxide for hot gas desulfurization. The adsorbents are characterized with CO 2 adsorption and tested in a fixed-bed reactor for H 2 S capture at 873 K over multiple cycles. The interaction between lanthanum oxide and the support varied with loading, and regeneration with humidified argon is better than with dilute oxygen. Although the capacity per gram of lanthanum is higher for supported lanthanum oxide, these adsorbents are not selective for the adsorption of H 2 S in the presence of CO 2, CO, and CH 4 likely as a result of site competition with CO 2 and H 2 O.

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Available abstract

The use of high temperatures (>873 K) for desulfurization of syngas has the potential to significantly increase the efficiency of gasification processes. Rare earth oxides are effective adsorbents at high temperatures but expensive. In this work, lanthanum oxide at low weight loadings (2.5–7.5 wt %) is supported on γ-Al 2 O 3 to more efficiently use lanthanum oxide for hot gas desulfurization. The adsorbents are characterized with CO 2 adsorption and tested in a fixed-bed reactor for H 2 S capture at 873 K over multiple cycles. The interaction between lanthanum oxide and the support varied with loading, and regeneration with humidified argon is better than with dilute oxygen. Although the capacity per gram of lanthanum is higher for supported lanthanum oxide, these adsorbents are not selective for the adsorption of H 2 S in the presence of CO 2, CO, and CH 4 likely as a result of site competition with CO 2 and H 2 O.

Key concepts: Lanthanum, Lanthanum oxide, Flue-gas desulfurization, Adsorption, Oxide, Syngas, Inorganic chemistry, Chemistry

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CO2 and H2S Adsorption on γ-Al2O3-Supported Lanthanum Oxide — Research Paper | ScholarLens