Person: Kwan, Eugene
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Publication Extending the Lifetime of Organic Flow Batteries via Redox State Management
(American Chemical Society (ACS), 2019-04-26) Goulet, Marc-Antoni; Tong, Liuchuan; Pollack, Daniel; Tabor, Daniel P.; Odom, Susan A.; Aspuru-Guzik, Alán; Kwan, Eugene; Gordon, Roy; Aziz, MichaelRedox flow batteries based on quinone-bearing aqueous electrolytes have emerged as promising systems for energy storage from intermittent renewable sources. The lifetime of these batteries is limited by quinone stability. Here, we confirm that 2,6-dihydroxyanthrahydroquinone tends to form an anthrone intermediate that is vulnerable to subsequent irreversible dimerization. We demonstrate quantitatively that this decomposition pathway is responsible for the loss of battery capacity. Computational studies indicate that the driving force for anthrone formation is greater for anthraquinones with lower reduction potentials. We show that the decomposition can be substantially mitigated. We demonstrate that conditions minimizing anthrone formation and avoiding anthrone dimerization slow the capacity loss rate by over an order of magnitude. We anticipate that this mitigation strategy readily extends to other anthraquinone-based flow batteries and is thus an important step toward realizing renewable electricity storage through long-lived organic flow batteries.
Publication Macrocyclic bis-thioureas catalyze stereospecific glycosylation reactions
(American Association for the Advancement of Science (AAAS), 2017-01-12) Park, Yongho; Harper, Kaid; Kuhl, Nadine; Kwan, Eugene; Liu, Richard; Jacobsen, EricCarbohydrates are involved in nearly all aspects of biochemistry, but their complex chemical structures present long-standing practical challenges to their synthesis. In particular, stereochemical outcomes in glycosylation reactions are highly dependent on the steric and electronic properties of coupling partners; thus, carbohydrate synthesis is not easily predictable. Here we report the discovery of a macrocyclic bis-thiourea derivative that catalyzes stereospecific invertive substitution pathways of glycosyl chlorides. The utility of the catalyst is demonstrated in the synthesis of trans-1,2-, cis-1,2-, and 2-deoxy-β-glycosides. Mechanistic studies are consistent with a cooperative mechanism in which an electrophile and a nucleophile are simultaneously activated to effect a stereospecific substitution reaction.
Publication Concerted nucleophilic aromatic substitutions
(Springer Science and Business Media LLC, 2018-07-16) Kwan, Eugene; Zeng, Yuwen; Besser, Harrison; Jacobsen, EricPublication Sensitive and Accurate 13C Kinetic Isotope Effect Measurements Enabled by Polarization Transfer
(American Chemical Society (ACS), 2016-12-29) Kwan, Eugene; Park, Yongho; Besser, Harrison; Anderson, Thayer; Jacobsen, EricPolarization transfer is demonstrated as a sensitive technique for the measurement of isotopic fractionation of protonated carbons at natural abundance. This method allows kinetic isotope effects (KIEs) to be determined with substantially less material or shorter acquisition time compared with traditional experiments. Computations quantitatively reproduce the KIEs in a Diels-Alder reaction and a catalytic glycosylation. The glycosylation is shown to occur by an effectively concerted mechanism.