Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith
The catalytic conversion of syngas into high carbon number alcohols (ethanol, propanol, butanol) has opened an avenue for the development of sustainable aviation fuels. The commercial production of higher alcohols from syngas remain challenging because of several constraints including poor selectivi...
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doaj-55c11f0de3444dc198b3fd7723976a1c2021-04-22T13:41:46ZengElsevierChemical Engineering Journal Advances2666-82112020-11-013100024Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolithWaqas Aslam0Mohamed H. Ahmed1Tengfei Qui2Muxina Konarova3Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, Brisbane, QLD 4072, AustraliaAustralian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, Brisbane, QLD 4072, AustraliaAustralian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, Brisbane, QLD 4072, AustraliaCorresponding author.; Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, Brisbane, QLD 4072, AustraliaThe catalytic conversion of syngas into high carbon number alcohols (ethanol, propanol, butanol) has opened an avenue for the development of sustainable aviation fuels. The commercial production of higher alcohols from syngas remain challenging because of several constraints including poor selectivity, harsh operating conditions, and unavailability of suitable technology. The present study is based on metal impregnated zeolite-based catalysts for catalytic conversion of syngas into higher alcohols. Following the superior catalytic performance of powdered ZSM5 (Si/Al 100), a structured monolith was engineered via 3D printing (Hyrel 3D – Engine SR). The catalyst precursors (K–Mo–Co) were in situ grown (by hydrothermal treatment) onto channels of zeolite monolith. A comparison between monolithic and powdered structures revealed a similar catalytic performance at lower space velocities (< 3000 h−1). With an increasing space velocity at 6000 h−1 and above, the structured catalyst retained its catalytic performance, whereas, carbon monoxide conversion dropped significantly (~20%) over powdered catalyst. Moreover, the by-products formation (methane and carbon monoxide) were reduced over structured monolith. The development of zeolite-based monolith has provided an opportunity to overcome diffusional limitations for better utilization of intrinsic kinetics of Mo-Co based catalysts for higher alcohols synthesis.http://www.sciencedirect.com/science/article/pii/S2666821120300247SyngasHigher alcoholsZeolite3D printingMonolith |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Waqas Aslam Mohamed H. Ahmed Tengfei Qui Muxina Konarova |
spellingShingle |
Waqas Aslam Mohamed H. Ahmed Tengfei Qui Muxina Konarova Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith Chemical Engineering Journal Advances Syngas Higher alcohols Zeolite 3D printing Monolith |
author_facet |
Waqas Aslam Mohamed H. Ahmed Tengfei Qui Muxina Konarova |
author_sort |
Waqas Aslam |
title |
Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith |
title_short |
Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith |
title_full |
Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith |
title_fullStr |
Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith |
title_full_unstemmed |
Syngas to higher alcohols synthesis over 3D printed KMoCo/ZSM5 monolith |
title_sort |
syngas to higher alcohols synthesis over 3d printed kmoco/zsm5 monolith |
publisher |
Elsevier |
series |
Chemical Engineering Journal Advances |
issn |
2666-8211 |
publishDate |
2020-11-01 |
description |
The catalytic conversion of syngas into high carbon number alcohols (ethanol, propanol, butanol) has opened an avenue for the development of sustainable aviation fuels. The commercial production of higher alcohols from syngas remain challenging because of several constraints including poor selectivity, harsh operating conditions, and unavailability of suitable technology. The present study is based on metal impregnated zeolite-based catalysts for catalytic conversion of syngas into higher alcohols. Following the superior catalytic performance of powdered ZSM5 (Si/Al 100), a structured monolith was engineered via 3D printing (Hyrel 3D – Engine SR). The catalyst precursors (K–Mo–Co) were in situ grown (by hydrothermal treatment) onto channels of zeolite monolith. A comparison between monolithic and powdered structures revealed a similar catalytic performance at lower space velocities (< 3000 h−1). With an increasing space velocity at 6000 h−1 and above, the structured catalyst retained its catalytic performance, whereas, carbon monoxide conversion dropped significantly (~20%) over powdered catalyst. Moreover, the by-products formation (methane and carbon monoxide) were reduced over structured monolith. The development of zeolite-based monolith has provided an opportunity to overcome diffusional limitations for better utilization of intrinsic kinetics of Mo-Co based catalysts for higher alcohols synthesis. |
topic |
Syngas Higher alcohols Zeolite 3D printing Monolith |
url |
http://www.sciencedirect.com/science/article/pii/S2666821120300247 |
work_keys_str_mv |
AT waqasaslam syngastohigheralcoholssynthesisover3dprintedkmocozsm5monolith AT mohamedhahmed syngastohigheralcoholssynthesisover3dprintedkmocozsm5monolith AT tengfeiqui syngastohigheralcoholssynthesisover3dprintedkmocozsm5monolith AT muxinakonarova syngastohigheralcoholssynthesisover3dprintedkmocozsm5monolith |
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