Abstract
Recent literature on synthesis gas conversion to higher alcohols over Mo-based catalysts is reviewed. Density functional theory calculations show that Mo-CO adsorption is weakened by C, P, or S ligands and this facilitates CO dissociation, either directly on Mo 2C, or by H-assisted dissociation on MoS 2, Mo 2C, and MoP. Consequently, Mo-based catalysts have high hydrocarbon selectivity unless they are promoted with alkali metals and/or Group VIII metals. Promoted MoS 2 and MoP have alcohol selectivities of 80 C atom % (CO 2-free basis) at typical operating conditions (5-8 MPa, H 2CO = 2-1, 537-603 K), whereas on promoted Mo 2C, alcohol selectivities are ∼60%. The kinetics of the synthesis gas conversion reactions over Mo-based catalysts have mostly been described by empirical power law models and the alcohol and hydrocarbon product distributions are consistent with a CO insertion mechanism for chain growth. © 2012 Taylor & Francis Group, LLC.
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Zaman, S., & Smith, K. J. (2012, January). A review of molybdenum catalysts for synthesis gas conversion to alcohols: Catalysts, mechanisms and kinetics. Catalysis Reviews - Science and Engineering. https://doi.org/10.1080/01614940.2012.627224
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