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Chung, Sang-Ho
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Highly Selective and Stable Production of Aromatics via High-Pressure Methanol Conversion

Author(s)
Shoinkhorova, TuianaCordero-Lanzac, TomasRamirez, AdrianChung, Sang-HoDokania, AbhayRuiz-Martinez, JavierGascon, Jorge
Issued Date
2021-03
DOI
10.1021/acscatal.0c05133
URI
https://scholarworks.unist.ac.kr/handle/201301/87328
Citation
ACS CATALYSIS, v.11, no.6, pp.3602 - 3613
Abstract
In the current petrochemical market, the global demand for aromatics, especially benzene, toluene, and xylenes Aromatics (BTXs), has increased sharply. The methanol-to-aromatic conversion (MTA) over ZSM-5 is among the most promising routes to satisfy this ever-growing demand. In this work, we show that high-pressure operation during MTA leads to a large increase in aromatic selectivity while enhancing stability on-stream. Stable operation along with a very high selectivity to aromatics (up to 50%, with 20% BTXs) can be achieved on a commercial high-silica ZSM-5 (SiO2/Al2O3 = 280) at 400 degrees C, 30 bar total pressure, and WHSV = 8 h(-1). The high partial pressure of primary olefins and the promoted methanol-induced hydrogen-transfer pathway result in an exponential increase in aromatization, while the high partial pressure of steam generated via dehydration of methanol leads to in situ coke removal and, therefore, to a much slower deactivation of the zeolite.
Publisher
AMER CHEMICAL SOC
ISSN
2155-5435
Keyword (Author)
ZSM-5high pressuremethanolaciditydeactivationaromaticsMTA
Keyword
BRONSTED/LEWIS ACID SYNERGYHYDROGEN-TRANSFER-REACTIONSTO-OLEFINS CONVERSIONHZSM-5 ZEOLITEDIMETHYL ETHERHYDROCARBONS REACTIONREACTION-MECHANISMREACTION CENTERSMTO REACTIONCATALYST

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