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Simple physical mixing of zeolite prevents sulfur deactivation of vanadia catalysts for NOx removal.


ABSTRACT: NOx abatement has been an indispensable part of environmental catalysis for decades. Selective catalytic reduction with ammonia using V2O5/TiO2 is an important technology for removing NOx emitted from industrial facilities. However, it has been a huge challenge for the catalyst to operate at low temperatures, because ammonium bisulfate (ABS) forms and causes deactivation by blocking the pores of the catalyst. Here, we report that physically mixed H-Y zeolite effectively protects vanadium active sites by trapping ABS in micropores. The mixed catalysts operate stably at a low temperature of 220?°C, which is below the dew point of ABS. The sulfur resistance of this system is fully maintained during repeated aging/regeneration cycles because the trapped ABS easily decomposes at 350?°C. Further investigations reveal that the pore structure and the amount of framework Al determined the trapping ability of various zeolites.

SUBMITTER: Song I 

PROVIDER: S-EPMC7876025 | biostudies-literature | 2021 Feb

REPOSITORIES: biostudies-literature

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Simple physical mixing of zeolite prevents sulfur deactivation of vanadia catalysts for NO<sub>x</sub> removal.

Song Inhak I   Lee Hwangho H   Jeon Se Won SW   Ibrahim Ismail A M IAM   Kim Joonwoo J   Byun Youngchul Y   Koh Dong Jun DJ   Han Jeong Woo JW   Kim Do Heui DH  

Nature communications 20210210 1


NO<sub>x</sub> abatement has been an indispensable part of environmental catalysis for decades. Selective catalytic reduction with ammonia using V<sub>2</sub>O<sub>5</sub>/TiO<sub>2</sub> is an important technology for removing NO<sub>x</sub> emitted from industrial facilities. However, it has been a huge challenge for the catalyst to operate at low temperatures, because ammonium bisulfate (ABS) forms and causes deactivation by blocking the pores of the catalyst. Here, we report that physically  ...[more]

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