| Literature DB >> 29687956 |
Amy E Settle1,2, Laura Berstis3, Shuting Zhang1, Nicholas A Rorrer1, Haiming Hu1, Ryan M Richards1,2, Gregg T Beckham1, Michael F Crowley3, Derek R Vardon1,2.
Abstract
cis,cis-Muconic acid is a platform bio-based chemical that can be upgraded to drop-in commodity and novel monomers. Among the possible drop-in products, dimethyl terephthalate can be synthesized via esterification, isomerization, Diels-Alder cycloaddition, and dehydrogenation. The isomerization of cis,cis-dimethyl muconate (ccDMM) to the trans,trans-form (ttDMM) can be catalyzed by iodine; however, studies have yet to address (i) the mechanism and reaction barriers unique to DMM, and (ii) the influence of solvent, potential for catalyst recycle, and recovery of high-purity ttDMM. To address this gap, we apply a joint computational and experimental approach to investigate iodine-catalyzed isomerization of DMM. Density functional theory calculations identified unique regiochemical considerations owing to the large number of halogen-diene coordination schemes. Both transition state theory and experiments estimate significant barrier reductions with photodissociated iodine. Solvent selection was critical for rapid kinetics, likely because of solvent complexation with iodine. Under select conditions, ttDMM yields of 95 % were achieved in <1 h with methanol, followed by high purity recovery (>98 %) with crystallization. Lastly, post-reaction iodine can be recovered and recycled with minimal loss of activity. Overall, these findings provide new insight into the mechanism and conditions necessary for DMM isomerization with iodine to advance the state-of-the-art for bio-based chemicals.Entities:
Keywords: biomass upgrading; density functional theory; iodine; muconic acid; reaction mechanism
Year: 2018 PMID: 29687956 DOI: 10.1002/cssc.201800606
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 8.928