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Journal ArticleDOI

Chemocatalytic Conversion of Ethanol into Butadiene and Other Bulk Chemicals

Carlo Angelici, +2 more
- 01 Sep 2013 - 
- Vol. 6, Iss: 9, pp 1595-1614
TLDR
The catalytic aspects associated with the synthesis of butadiene via the Lebedev process are reviewed, as well as the production of other, mechanistically related bulk chemicals that can be obtained from (bio)ethanol.
Abstract
The development of new and improved processes for the synthesis of bio-based chemicals is one of the scientific challenges of our time. These new discoveries are not only important from an environmental point of view, but also represent an important economic opportunity, provided that the developed processes are selective and efficient. Bioethanol is currently produced from renewable resources in large amounts and, in addition to its use as biofuel, holds considerable promise as a building block for the chemical industry. Indeed, further improvements in production, both in terms of efficiency and feedstock selection, will guarantee availability at competitive prices. The conversion of bioethanol into commodity chemicals, in particular direct ‘drop-in’ replacements is, therefore, becoming increasingly attractive, provided that the appropriate (catalytic) technology is in place. The production of green and renewable 1,3-butadiene is a clear example of this approach. The Lebedev process for the one-step catalytic conversion of ethanol to butadiene has been known since the 1930s and has been applied on an industrial scale to produce synthetic rubber. Later, the availability of low-cost oil made it more convenient to obtain butadiene from petrochemical sources. The desire to produce bulk chemicals in a sustainable way and the availability of low-cost bioethanol in large volumes has, however, resulted in a renaissance of this old butadiene production process. This paper reviews the catalytic aspects associated with the synthesis of butadiene via the Lebedev process, as well as the production of other, mechanistically related bulk chemicals that can be obtained from (bio)ethanol.

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Citations
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Status and prospects in higher alcohols synthesis from syngas

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Recent Advances in Catalytic Conversion of Ethanol to Chemicals

TL;DR: A detailed summary of recent advances in catalytic conversion of ethanol to a wide range of chemicals and fuels can be found in this article, where the authors particularly focus on catalyst advances and fundamental understanding of reaction mechanisms involved in ethanol steam reforming.
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Review of old chemistry and new catalytic advances in the on-purpose synthesis of butadiene

TL;DR: A comprehensive summary of the current state of knowledge regarding advances and achievements in the field of the chemocatalytic conversion of ethanol and butanediols to butadiene is presented, including thermodynamics and kinetic aspects of the reactions with discussions on the reaction pathways and the type of catalysts developed.
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Production of Fuels and Chemicals from Biomass: Condensation Reactions and Beyond

TL;DR: This review surveys both the biological and chemical catalytic routes to producing platform chemicals from renewable sources and describes advances in condensation chemistry and strategies for the conversion of these platform chemicals into fuels and high-value chemicals.
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Journal ArticleDOI

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