Literature DB >> 20578771

Nonhumidified intermediate temperature fuel cells using protic ionic liquids.

Seung-Yul Lee1, Atsushi Ogawa, Michihiro Kanno, Hirofumi Nakamoto, Tomohiro Yasuda, Masayoshi Watanabe.   

Abstract

In this paper, the characterization of a protic ionic liquid, diethylmethylammonium trifluoromethanesulfonate ([dema][TfO]), as a proton conductor for a fuel cell and the fabrication of a membrane-type fuel cell system using [dema][TfO] under nonhumidified conditions at intermediate temperatures are described in detail. In terms of physicochemical and electrochemical properties, [dema][TfO] exhibits high activity for fuel cell electrode reactions (i.e., the hydrogen oxidation reaction (HOR) and oxygen reduction reaction (ORR)) at a Pt electrode, and the open circuit voltage (OCV) of a liquid fuel cell is 1.03 V at 150 degrees C, as has reported in ref 27. However, diethylmethylammonium bis(trifluoromethane sulfonyl)amide ([dema][NTf(2)]) has relatively low HOR and ORR activity, and thus, the OCV is ca. 0.7 V, although [dema][NTf(2)] and [dema][TfO] have an identical cation ([dema]) and similar thermal and bulk-transport properties. Proton conduction occurs mainly via the vehicle mechanism in [dema][TfO] and the proton transference number (t(+)) is 0.5-0.6. This relatively low t(+) appears to be more disadvantageous for a proton conductor than for other electrolytes such as hydrated sulfonated polymer electrolyte membranes (t(+) = 1.0). However, fast proton-exchange reactions occur between ammonium cations and amines in a model compound. This indicates that the proton-exchange mechanism contributes to the fuel cell system under operation, where deprotonated amines are continuously generated by the cathodic reaction, and that polarization of the cell is avoided. Six-membered sulfonated polyimides in the diethylmethylammonium form exhibit excellent compatibility with [dema][TfO]. The composite membranes can be obtained up to a [dema][TfO] content of 80 wt % and exhibit good thermal stability, high ionic conductivity, and mechanical strength and gas permeation comparable to those of hydrated Nafion. H(2)/O(2) fuel cells prepared using the composite membranes can successfully operate at temperatures from 30 to 140 degrees C under nonhumidified conditions, and a current density of 250 mA cm(-2) is achieved at 120 degrees C. The protic ionic liquid and its composite membrane are a possible candidate for an electrolyte of a H(2)/O(2) fuel cell that operates under nonhumidified conditions.

Entities:  

Year:  2010        PMID: 20578771     DOI: 10.1021/ja102367x

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  11 in total

1.  Improvements in photoelectric performance of dye-sensitised solar cells using ionic liquid-modified TiO2 electrodes.

Authors:  Tomohiko Inomata; Ayaka Matsunaga; Guangzhu Jin; Takuma Kitagawa; Mizuho Muramatsu; Tomohiro Ozawa; Hideki Masuda
Journal:  RSC Adv       Date:  2022-07-06       Impact factor: 4.036

2.  Acidity effects of medium fluids on anhydrous proton conductivity of acid-swollen block polymer electrolyte membranes.

Authors:  Takato Kajita; Atsushi Noro; Takahiro Seki; Yushu Matsushita; Naoki Nakamura
Journal:  RSC Adv       Date:  2021-05-26       Impact factor: 4.036

3.  In situ gelation of aqueous sulfuric acid solution for fuel cells.

Authors:  Xurui Wang; Jie You; Yong Wu
Journal:  RSC Adv       Date:  2021-06-24       Impact factor: 4.036

4.  Monoammonium salts of multiprotic acids as dopants for proton-conductive hydrogel membranes: the effects of anions.

Authors:  Kainan Niu; Jie Luo; Qing Yang; Caihong Wang; Shuai Tan; Yong Wu
Journal:  RSC Adv       Date:  2022-05-18       Impact factor: 4.036

5.  The Effect of Microporous Polymeric Support Modification on Surface and Gas Transport Properties of Supported Ionic Liquid Membranes.

Authors:  Alsu A Akhmetshina; Ilsiya M Davletbaeva; Ekaterina S Grebenschikova; Tatyana S Sazanova; Anton N Petukhov; Artem A Atlaskin; Evgeny N Razov; Ilnaz I Zaripov; Carla F Martins; Luísa A Neves; Ilya V Vorotyntsev
Journal:  Membranes (Basel)       Date:  2015-12-30

6.  The Structure of the Electric Double Layer of the Protic Ionic Liquid [Dema][TfO] Analyzed by Atomic Force Spectroscopy.

Authors:  Christian Rodenbücher; Yingzhen Chen; Klaus Wippermann; Piotr M Kowalski; Margret Giesen; Dirk Mayer; Florian Hausen; Carsten Korte
Journal:  Int J Mol Sci       Date:  2021-11-23       Impact factor: 5.923

7.  Integrated electronic skin (e-skin) for harvesting of TENG energy through push-pull ionic electrets and ion-ion hopping mechanism.

Authors:  Ravi Kumar Cheedarala; Jung Il Song
Journal:  Sci Rep       Date:  2022-03-09       Impact factor: 4.996

8.  Influence of the acid-base stoichiometry and residual water on the transport mechanism in a highly-Brønsted-acidic proton-conducting ionic liquid.

Authors:  Jingjing Lin; Carsten Korte
Journal:  RSC Adv       Date:  2020-11-24       Impact factor: 4.036

9.  On-Surface Metathesis of an Ionic Liquid on Ag(111).

Authors:  Stephen Massicot; Tomoya Sasaki; Matthias Lexow; Florian Maier; Susumu Kuwabata; Hans-Peter Steinrück
Journal:  Chemistry       Date:  2022-04-05       Impact factor: 5.020

10.  Tuning anhydrous proton conduction in single-ion polymers by crystalline ion channels.

Authors:  Onnuri Kim; Kyoungwook Kim; U Hyeok Choi; Moon Jeong Park
Journal:  Nat Commun       Date:  2018-11-28       Impact factor: 14.919

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