Nanostructured ligament and fiber Al–doped Li7La3Zr2O12 scaffolds to mediate cathode-electrolyte interface chemistry

2021 ◽  
Vol 513 ◽  
pp. 230551
Author(s):  
Georgios Polizos ◽  
Jaswinder Sharma ◽  
Charl J. Jafta ◽  
Nitin Muralidharan ◽  
Gabriel M. Veith ◽  
...  
2020 ◽  
Vol 32 (23) ◽  
pp. 2000030 ◽  
Author(s):  
Tao Deng ◽  
Xiao Ji ◽  
Yang Zhao ◽  
Longsheng Cao ◽  
Shuang Li ◽  
...  

2007 ◽  
Vol 111 (20) ◽  
pp. 7411-7421 ◽  
Author(s):  
Kang Xu ◽  
Yiufai Lam ◽  
Sheng S. Zhang ◽  
T. Richard Jow ◽  
Timothy B. Curtis

2020 ◽  
Vol 49 (18) ◽  
pp. 6632-6665
Author(s):  
Young Jin Sa ◽  
Chan Woo Lee ◽  
Si Young Lee ◽  
Jonggeol Na ◽  
Ung Lee ◽  
...  

This review article provides the recent progress in the electrochemical CO2 reduction reaction by understanding and tuning catalyst–electrolyte interfaces.


Author(s):  
S.P.A.U.K. Samarakoon ◽  
C.A.N. Fernando

A considerable photo-current enhancement was found at the Cu/p-Cu2O/rGO-electrolyte interface in a photo-electrochemical cell with compared to that of Cu/p-Cu2O-electrolyte interface. The reason for the photo-current enhancement may be due to the efficient charge separation process provided at Cu/p-Cu2O/rGO-electrolyte interface. Here rGO (reduced graphene oxide) acts as an electron acceptor for the photo-generated charge carriers as it readily accept electrons from the conduction band of p-Cu2O. rGO was synthesized using electro-phoretic deposition (EPD) technique. Fabricated samples were characterized using diffuse reflectance spectra, photo-current action spectra and the time development of the photocurrent of photo-electrochemical cells.


2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Kaiming Cheng ◽  
Huixia Xu ◽  
Lijun Zhang ◽  
Jixue Zhou ◽  
Xitao Wang ◽  
...  

AbstractThe Ce0.8Gd0.2O2−δ (CGO) interlayer is commonly applied in solid oxide fuel cells (SOFCs) to prevent chemical reactions between the (La1−xSrx)(Co1−yFey)O3−δ (LSCF) oxygen electrode and the Y2O3-stabilized ZrO2 (YSZ) electrolyte. However, formation of the YSZ–CGO solid solution with low ionic conductivity and the SrZrO3 (SZO) insulating phase still happens during cell production and long-term operation, causing poor performance and degradation. Unlike many experimental investigations exploring these phenomena, consistent and quantitative computational modeling of the microstructure evolution at the oxygen electrode–electrolyte interface is scarce. We combine thermodynamic, 1D kinetic, and 3D phase-field modeling to computationally reproduce the element redistribution, microstructure evolution, and corresponding ohmic loss of this interface. The influences of different ceramic processing techniques for the CGO interlayer, i.e., screen printing and physical laser deposition (PLD), and of different processing and long-term operating parameters are explored, representing a successful case of quantitative computational engineering of the oxygen electrode–electrolyte interface in SOFCs.


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