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Recent advances in catalytic conversion of bioethanol to 1,3‐Butadiene: reaction mechanism, catalyst design, and process scalability

dc.contributor.authorVarma, Abhishek R.
dc.contributor.authorRahman, Md Ziyaur
dc.contributor.authorGadkari, Siddharth
dc.contributor.authorTawai, Atthasit
dc.contributor.authorSriariyanun, Malinee
dc.contributor.authorXia, Ao
dc.contributor.authorKumar, Vinod
dc.contributor.authorMaity, Sunil K.
dc.date.accessioned2025-12-05T11:24:37Z
dc.date.available2025-12-05T11:24:37Z
dc.date.freetoread2025-12-05
dc.date.issued2026-01
dc.date.pubOnline2025-11-26
dc.description.abstract1,3-Butadiene (BD), a symmetric C4 diene, is a primary precursor for numerous synthetic rubbers and is sourced largely from the naphtha cracking process. Sustainable BD production from renewable biomass is indispensable for preserving the environment through the circular economy. Ethanol-to-BD (ETB) has particularly witnessed a resurgence in recent years, following two different routes: one-step conversion and two-step process via acetaldehyde. The present review article critically examines the current state-of-the-art research progress of the ETB processes, in terms of historical perspective, reaction mechanism, kinetics, thermodynamics, multifunctional heterogeneous catalysts, reaction parameters, and economic-environmental impact analysis. The ETB processes encompass a complex sequence of reactions on different catalytic sites, including dehydrogenation, carbon–carbon coupling, and dehydration. However, the catalyst with the proper balance between acidic, basic, redox, and metal functionalities (e.g., metal/metal oxide-modified MgO–SiO2 and Zn–Zr mixed oxide), which are uniformly distributed and cooperative, remains a critical challenge in these processes. Despite notable advancements in understanding molecular mechanisms, the design of catalysts for high BD selectivity and process scalability remains the key obstacle to commercial success. The comprehensive summary of ETB process developments provides a foundation for researchers and industry practitioners to advance research and optimize the critical parameters for sustainable BD production.
dc.description.journalNameChemSusChem
dc.identifier.citationVarma AR, Rahman MZ, Gadkari S, et al., (2026) Recent advances in catalytic conversion of bioethanol to 1,3‐Butadiene: reaction mechanism, catalyst design, and process scalability. ChemSusChem, Volume 19, Issue 1, January 2026, Article number e202501926en_UK
dc.identifier.eissn1864-564X
dc.identifier.elementsID867190
dc.identifier.issn1864-5631
dc.identifier.issueNo1
dc.identifier.paperNoe202501926
dc.identifier.urihttps://doi.org/10.1002/cssc.202501926
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/24702
dc.identifier.volumeNo19
dc.languageEnglish
dc.language.isoen
dc.publisherWileyen_UK
dc.publisher.urihttps://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/cssc.202501926
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subjectGeneral Chemistryen_UK
dc.subjectOrganic Chemistryen_UK
dc.subject3403 Macromolecular and materials chemistryen_UK
dc.subject3405 Organic chemistryen_UK
dc.subject4004 Chemical engineeringen_UK
dc.titleRecent advances in catalytic conversion of bioethanol to 1,3‐Butadiene: reaction mechanism, catalyst design, and process scalabilityen_UK
dc.typeArticle
dcterms.dateAccepted2025-11-10

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