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Kim, Kwiyong
Redox and electrochemistry advancing clean technologies Lab.
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Role of Protons in Electrochemical Ammonia Synthesis Using Solid-State Electrolytes

Author(s)
Yoo, Chung-YulPark, Jong HyunKim, KwiyongHan, Jong-InJeong, Eun-YoungJeong, Chan-HeeYoon, Hyung ChulKim, Jong-Nam
Issued Date
2017-09
DOI
10.1021/acssuschemeng.7b01515
URI
https://scholarworks.unist.ac.kr/handle/201301/62108
Citation
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, v.5, no.9, pp.7972 - 7978
Abstract
Electrochemical methods of synthesizing ammonia from nitrogen gas have the potential to replace the energy intensive Haber-Bosch process. In doing so, they offer a CO2-free route to the production of the ever-promising energy carrier. In this study, an effort was made to reveal the relationship between proton involvement in the rate-limiting step of the ammonia synthesis reaction and the overall ammonia synthesis rate, particularly for electrolytic cells using solid-state electrolytes, as no such rule based on the measured parameters of the materials has ever been reported. An empirical atomistic expression was derived to explain the observed correlation between the proton conductivity of the solid-state electrolyte and the ammonia formation rate, by considering the proton excorporation and migration enthalpies. This relationship was determined by examining experimental results from the literature that had been obtained using diverse proton-conducting electrolytes. An almost linear energy relationship was demonstrated for state-of-the-art heterogeneous electrocatalysis.
Publisher
AMER CHEMICAL SOC
ISSN
2168-0485
Keyword (Author)
Electrochemical ammonia synthesisProton-conducting electrolyteSolid-state electrolyteHeterogeneous electrocatalysisEnergy relationshipProton conductivity
Keyword
ATMOSPHERIC-PRESSUREINTERMEDIATE-TEMPERATURECOMPOSITE ELECTROLYTEWET AIRHYDROXIDE SUSPENSIONSMICROEMULSION METHODAMBIENT CONDITIONSDOPED BACEO3MOLTEN-SALTSNITROGEN

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