Standard

Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates. / Sadykov, V. A.; Sadovskaya, E. M.; Filonova, E. A. и др.

в: Ceramics International, Том 46, № 16, 11.2020, стр. 25527-25535.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Sadykov, VA, Sadovskaya, EM, Filonova, EA, Eremeev, NF, Bogdanovich, NM, Pikalov, SM, Vylkov, AI & Pikalova, EY 2020, 'Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates', Ceramics International, Том. 46, № 16, стр. 25527-25535. https://doi.org/10.1016/j.ceramint.2020.07.024

APA

Sadykov, V. A., Sadovskaya, E. M., Filonova, E. A., Eremeev, N. F., Bogdanovich, N. M., Pikalov, S. M., Vylkov, A. I., & Pikalova, E. Y. (2020). Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates. Ceramics International, 46(16), 25527-25535. https://doi.org/10.1016/j.ceramint.2020.07.024

Vancouver

Sadykov VA, Sadovskaya EM, Filonova EA, Eremeev NF, Bogdanovich NM, Pikalov SM и др. Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates. Ceramics International. 2020 нояб.;46(16):25527-25535. Epub 2020 июль 9. doi: 10.1016/j.ceramint.2020.07.024

Author

Sadykov, V. A. ; Sadovskaya, E. M. ; Filonova, E. A. и др. / Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates. в: Ceramics International. 2020 ; Том 46, № 16. стр. 25527-25535.

BibTeX

@article{a93078cdeb5646e689895b0be0981178,
title = "Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates",
abstract = "A-site deficient Ruddlesden–Popper phases now attract a lot of attention as promising materials for intermediate temperature solid oxide fuel cells' cathodes and oxygen separation membranes. However, controversial information on the A-site deficiency effect on structural, transport and electrochemical properties of these materials apparently requires further studies of such systems. In this work, structural and transport features of (Nd2-xCax)0.975NiO4+δ system were studied. (Nd2-xCax)0.975NiO4+δ (x = 0–0.4) samples were synthesized via a solution-assisted solid state reaction method and characterized by X-ray diffraction. Oxygen transport was studied by the temperature programmed isotope exchange of oxygen with C18O2 in the flow reactor. A high oxygen mobility of materials (D* ~ 10−7 cm2/s at 700 °C) is provided by the cooperative mechanism of oxygen migration involving both regular and highly-mobile interstitial oxygen. As typical for Ruddlesden–Popper phases, doping with Ca leads to increase of total conductivity due to holes' formation and decrease of oxygen mobility due to hampering cooperative mechanism, however, this effect is less pronounced compared to A-site stoichiometric Nd nickelates which can be attributed to oxygen vacancies formation and their participation in cooperative migration as well as to other features of A-site deficiency. High mixed ionic-electronic conductivity of materials makes them promising in using as solid oxide fuel cells{\textquoteright} cathodes and oxygen separation membranes.",
keywords = "Diffusion, Fuel cells, Membranes, X-ray methods",
author = "Sadykov, {V. A.} and Sadovskaya, {E. M.} and Filonova, {E. A.} and Eremeev, {N. F.} and Bogdanovich, {N. M.} and Pikalov, {S. M.} and Vylkov, {A. I.} and Pikalova, {E. Yu}",
year = "2020",
month = nov,
doi = "10.1016/j.ceramint.2020.07.024",
language = "English",
volume = "46",
pages = "25527--25535",
journal = "Ceramics International",
issn = "0272-8842",
publisher = "Elsevier",
number = "16",

}

RIS

TY - JOUR

T1 - Mixed ionic-electronic conductivity features of A-site deficient Nd nickelates

AU - Sadykov, V. A.

AU - Sadovskaya, E. M.

AU - Filonova, E. A.

AU - Eremeev, N. F.

AU - Bogdanovich, N. M.

AU - Pikalov, S. M.

AU - Vylkov, A. I.

AU - Pikalova, E. Yu

PY - 2020/11

Y1 - 2020/11

N2 - A-site deficient Ruddlesden–Popper phases now attract a lot of attention as promising materials for intermediate temperature solid oxide fuel cells' cathodes and oxygen separation membranes. However, controversial information on the A-site deficiency effect on structural, transport and electrochemical properties of these materials apparently requires further studies of such systems. In this work, structural and transport features of (Nd2-xCax)0.975NiO4+δ system were studied. (Nd2-xCax)0.975NiO4+δ (x = 0–0.4) samples were synthesized via a solution-assisted solid state reaction method and characterized by X-ray diffraction. Oxygen transport was studied by the temperature programmed isotope exchange of oxygen with C18O2 in the flow reactor. A high oxygen mobility of materials (D* ~ 10−7 cm2/s at 700 °C) is provided by the cooperative mechanism of oxygen migration involving both regular and highly-mobile interstitial oxygen. As typical for Ruddlesden–Popper phases, doping with Ca leads to increase of total conductivity due to holes' formation and decrease of oxygen mobility due to hampering cooperative mechanism, however, this effect is less pronounced compared to A-site stoichiometric Nd nickelates which can be attributed to oxygen vacancies formation and their participation in cooperative migration as well as to other features of A-site deficiency. High mixed ionic-electronic conductivity of materials makes them promising in using as solid oxide fuel cells’ cathodes and oxygen separation membranes.

AB - A-site deficient Ruddlesden–Popper phases now attract a lot of attention as promising materials for intermediate temperature solid oxide fuel cells' cathodes and oxygen separation membranes. However, controversial information on the A-site deficiency effect on structural, transport and electrochemical properties of these materials apparently requires further studies of such systems. In this work, structural and transport features of (Nd2-xCax)0.975NiO4+δ system were studied. (Nd2-xCax)0.975NiO4+δ (x = 0–0.4) samples were synthesized via a solution-assisted solid state reaction method and characterized by X-ray diffraction. Oxygen transport was studied by the temperature programmed isotope exchange of oxygen with C18O2 in the flow reactor. A high oxygen mobility of materials (D* ~ 10−7 cm2/s at 700 °C) is provided by the cooperative mechanism of oxygen migration involving both regular and highly-mobile interstitial oxygen. As typical for Ruddlesden–Popper phases, doping with Ca leads to increase of total conductivity due to holes' formation and decrease of oxygen mobility due to hampering cooperative mechanism, however, this effect is less pronounced compared to A-site stoichiometric Nd nickelates which can be attributed to oxygen vacancies formation and their participation in cooperative migration as well as to other features of A-site deficiency. High mixed ionic-electronic conductivity of materials makes them promising in using as solid oxide fuel cells’ cathodes and oxygen separation membranes.

KW - Diffusion

KW - Fuel cells

KW - Membranes

KW - X-ray methods

UR - http://www.scopus.com/inward/record.url?scp=85087993237&partnerID=8YFLogxK

U2 - 10.1016/j.ceramint.2020.07.024

DO - 10.1016/j.ceramint.2020.07.024

M3 - Article

AN - SCOPUS:85087993237

VL - 46

SP - 25527

EP - 25535

JO - Ceramics International

JF - Ceramics International

SN - 0272-8842

IS - 16

ER -

ID: 24766206