In situ electrolyte replenishment with atmospheric pressure-chemical/electrochemical vapour deposition for molten carbonate fuel cells

Authors
Kabin KimBAE JAE KWANAudasso, EmilioCho, Albert WonJun Young BaePark, Hyun SeoJANG, SEONG CHEOLCho, Yong SooKim, Han SungChoi, Sun HeeYoon, Sung Pil
Issue Date
2023-11
Publisher
Elsevier BV
Citation
Chemical Engineering Journal, v.476
Abstract
Molten carbonate fuel cells (MCFCs) offer several advantages in energy applications, but their lifetime is limited especially by electrolyte depletion. In this study, a novel in situ method for replenishing the electrolyte in MCFCs by injecting gaseous electrolyte precursors (EP) that form liquid electrolyte through reactions with CO2/O2 gases or ions is introduced. The selection of EP species (LiI, NaI, and KOH) are guided by thermodynamic considerations including high vapour pressures and conversion rates to Li/K or Li/Na carbonates. The proposed approach addresses two electrolytic depletion stages: consumption of the electrolyte in the electrode (Stage 1) and in the matrix pores (Stage 2). Atmospheric-pressure electrochemical vapour deposition (AP-EVD) and atmospheric-pressure chemical vapour deposition (AP-CVD) are demonstrated to replenish electrolyte in the electrode and matrix pores, respectively. The applied techniques sustained a cell with a low (Li/Na)2CO3 electrolyte level for long-term operation (>1,000 h) while maintaining stable performance (>0.8 V at 150 mA cm?2). The method also returned an inactive cell to its normal operating conditions (OCV: 1.054 V, : 0.61 Ω cm2, (Li/K)2CO3 electrolyte). These results promise enhanced durability of MCFCs and render them much more viable for use in energy applications.
Keywords
NICKEL-ALUMINUM ALLOY; LONG-TERM OPERATION; PART I; PERFORMANCE; TEMPERATURE; CORROSION; STABILITY; ANODE; NANOPARTICLES; COMPOSITE; Molten carbonate fuel cell; Electrochemical vapour deposition; Chemical vapour deposition; Electrolyte replenishment
ISSN
1385-8947
URI
https://pubs.kist.re.kr/handle/201004/79766
DOI
10.1016/j.cej.2023.146663
Appears in Collections:
KIST Article > 2023
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