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2019 - Sustainable Industrial Processing Summit & Exhibition
23-27 October 2019, Coral Beach Resort, Paphos, Cyprus
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Almost 500 Abstracts Submitted from 60 Countries
Six Nobel Laureates have already confirmed their attendance: Profs. Dan Shechtman, Kurt Wüthrich, Ferid Murad, Rudy Marcus, Yuan Lee and Klaus Klitzing.
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    Proton shuttling in protic ionic liquid fuel cells
    Darren Walsh1; Daniel Smith1;
    1UNIVERSITY OF NOTTINGHAM, Nottingham, United Kingdom;
    PAPER: 254/Molten/Regular (Oral)
    SCHEDULED: 14:25/Sat. 26 Oct. 2019/Ambrosia A (77/RF)



    ABSTRACT:
    The conventional polymer-electrolyte membranes used in low-temperature fuel cells are limited to operating temperatures below about 120 celsius, as they must be fully hydrated to facilitate proton transport. Protic ionic liquids (PILs) are ionic liquids formed by transferring protons from Brønsted acids to Brønsted bases, and it has recently been shown that some ammonium-based PILs inherently exhibit high proton conductivities. Consequently, PILs have been proposed for use as electrolytes in non-humidified fuel cells that can operate above 120 celsius (at intermediate temperatures).<sup>1-3</sup> While they nominally consist entirely of ions, however, PILs can often contain a significant quantity of neutral species (either molecules or ion clusters) that can affect the physicochemical properties of the liquids.<br />In this contribution, we first describe an electroanalytical method for detecting and quantifying residual Brønsted acids in a series of ammonium-based PILs. Ultramicroelectrode voltammetry reveals that some of the accepted methods for synthesizing PILs can readily result in the formation of nonstoichiometric PILs containing up to 230 mmol/L residual acid. We will then show that residual acids in PILs can have a drastic effect on the electrocatalytic oxygen reduction reaction (ORR) in the PILs. For example, the potential at which the ORR occurs at Pt in the PIL diethylmethylammonium trifluoromethanesulfonate, [dema][TfO], decreases linearly as the strength of the proton donor in the liquid decreases. In pure [dema][TfO], in which the proton donors during the ORR are the cations of the PIL (p<i>K</i><sub>a</sub> = 10), the onset potential of the ORR is the same as that of the hydrogen oxidation reaction (HOR) in the PIL. These observations have significant implications for the use of PILs as electrolytes in fuel cells and indicate that the best PILs are highly "acidic" liquids that can support oxygen reduction at high potentials.

    References:
    1. M. Watanabe, M. L. Thomas, S. Zhang, K. Ueno, T. Yasuda, K. Dokko, Chem. Rev. 2017, 117, 7190-7239.<br />2. J. Thomson, P. Dunn, L. Holmes, J.-P. Belieres, C. A. Angell, D. Gervasio, ECS Trans.<br />2008, 13, 21-29.<br />3. D. R. MacFarlane, N. Tachikawa, M. Forsyth, J. M. Pringle, P. C. Howlett, G. D. Elliott,<br />J. H. Davis Jr., M. Watanabe, P. Simon, C. A. Angell, Energy Environ. Sci. 2014, 7, 232-250.