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Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium. / Pikalova, E. Yu; Kolchugin, A. A.; Sadykov, V. A. et al.

In: International Journal of Hydrogen Energy, Vol. 43, No. 36, 06.09.2018, p. 17373-17386.

Research output: Contribution to journalArticlepeer-review

Harvard

Pikalova, EY, Kolchugin, AA, Sadykov, VA, Sadovskaya, EM, Filonova, EA, Eremeev, NF & Bogdanovich, NM 2018, 'Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium', International Journal of Hydrogen Energy, vol. 43, no. 36, pp. 17373-17386. https://doi.org/10.1016/j.ijhydene.2018.07.115

APA

Pikalova, E. Y., Kolchugin, A. A., Sadykov, V. A., Sadovskaya, E. M., Filonova, E. A., Eremeev, N. F., & Bogdanovich, N. M. (2018). Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium. International Journal of Hydrogen Energy, 43(36), 17373-17386. https://doi.org/10.1016/j.ijhydene.2018.07.115

Vancouver

Pikalova EY, Kolchugin AA, Sadykov VA, Sadovskaya EM, Filonova EA, Eremeev NF et al. Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium. International Journal of Hydrogen Energy. 2018 Sept 6;43(36):17373-17386. doi: 10.1016/j.ijhydene.2018.07.115

Author

Pikalova, E. Yu ; Kolchugin, A. A. ; Sadykov, V. A. et al. / Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium. In: International Journal of Hydrogen Energy. 2018 ; Vol. 43, No. 36. pp. 17373-17386.

BibTeX

@article{5d4afa64e08e4c679f739c7ed58b4774,
title = "Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium",
abstract = "Progress in hydrogen energy and promising directions for its modern development are closely related to design of fuel cells, including solid oxide fuel cells, and solid state membranes for hydrogen, oxygen and synthesis gas production. A necessary condition for fabrication of economically competitive devices in this area is the use of cheap electrode materials combining high electrochemical activity and long-term stability. Ln2NiO4+δ oxides with the Ruddlesden–Popper layered structure possessing a high mixed ion-electron conductivity and moderate values of the coefficients of thermal expansion are promising materials for development of oxygen-conducting membranes and cathodes of intermediate-temperature solid oxide fuel cells. In this paper structural characteristics, electrical conductivity, oxygen mobility and electrochemical properties of Ln2-xCaxNiO4+δ (Ln = La, Pr, Nd; x = 0; 0.3) samples were studied to determine factors, which have the most significant effect on the electrochemical activity of electrodes and their stability. It was found that doping with calcium lead to stabilization of the structure and increased the electrical conductivity of materials. However, addition of calcium decreased the electrochemical activity of electrodes in varying degrees depending on the nature of lanthanide. There is no direct interrelation of such a decrease of activity with either the electrical properties or the interstitial oxygen content. We have revealed correlation of the polarization resistance of electrodes with characteristics of oxygen transfer in the electrode material (self-diffusion coefficient, surface exchange constant). Using the C18O2 SSITKA method, the total oxygen mobility in the doped materials was shown to fall with doping due to a decrease in the content of highly mobile interstitial oxygen and hampering of the cooperative oxygen transport mechanism. In the case of La1.7Ca0.3NiO4+δ, this leads to the appearance of a slow diffusion channel and a substantial decrease in the total diffusion coefficient value which results in a sharp increase in the polarization resistance of the electrodes. This phenomenon is not observed in materials with praseodymium and neodymium. The electrodes based on Pr1.7Ca0.3NiO4+δ and Nd1.7Ca0.3NiO4+δ, developed in this work, have an acceptable level of the electrochemical activity along with a high electrical conductivity and increased stability in comparison with undoped compositions and can be recommended for use as cathodes for intermediate temperature fuel cells.",
keywords = "Cathode, Hydrogen energy, Isotopic exchange, LnNiO, Ruddlesden–Popper phases, Solid oxide fuel cells, Ln(2)NiO(4), Ruddlesden-Popper phases, LA2NIO4+DELTA, NONSTOICHIOMETRY, CATHODE MATERIALS, ELECTROLYTES, IONIC TRANSPORT, TEMPERATURE, CONDUCTIVITY, OXYGEN DIFFUSION, OXIDES, EXCHANGE",
author = "Pikalova, {E. Yu} and Kolchugin, {A. A.} and Sadykov, {V. A.} and Sadovskaya, {E. M.} and Filonova, {E. A.} and Eremeev, {N. F.} and Bogdanovich, {N. M.}",
year = "2018",
month = sep,
day = "6",
doi = "10.1016/j.ijhydene.2018.07.115",
language = "English",
volume = "43",
pages = "17373--17386",
journal = "International Journal of Hydrogen Energy",
issn = "0360-3199",
publisher = "Elsevier Ltd",
number = "36",

}

RIS

TY - JOUR

T1 - Structure, transport properties and electrochemical behavior of the layered lanthanide nickelates doped with calcium

AU - Pikalova, E. Yu

AU - Kolchugin, A. A.

AU - Sadykov, V. A.

AU - Sadovskaya, E. M.

AU - Filonova, E. A.

AU - Eremeev, N. F.

AU - Bogdanovich, N. M.

PY - 2018/9/6

Y1 - 2018/9/6

N2 - Progress in hydrogen energy and promising directions for its modern development are closely related to design of fuel cells, including solid oxide fuel cells, and solid state membranes for hydrogen, oxygen and synthesis gas production. A necessary condition for fabrication of economically competitive devices in this area is the use of cheap electrode materials combining high electrochemical activity and long-term stability. Ln2NiO4+δ oxides with the Ruddlesden–Popper layered structure possessing a high mixed ion-electron conductivity and moderate values of the coefficients of thermal expansion are promising materials for development of oxygen-conducting membranes and cathodes of intermediate-temperature solid oxide fuel cells. In this paper structural characteristics, electrical conductivity, oxygen mobility and electrochemical properties of Ln2-xCaxNiO4+δ (Ln = La, Pr, Nd; x = 0; 0.3) samples were studied to determine factors, which have the most significant effect on the electrochemical activity of electrodes and their stability. It was found that doping with calcium lead to stabilization of the structure and increased the electrical conductivity of materials. However, addition of calcium decreased the electrochemical activity of electrodes in varying degrees depending on the nature of lanthanide. There is no direct interrelation of such a decrease of activity with either the electrical properties or the interstitial oxygen content. We have revealed correlation of the polarization resistance of electrodes with characteristics of oxygen transfer in the electrode material (self-diffusion coefficient, surface exchange constant). Using the C18O2 SSITKA method, the total oxygen mobility in the doped materials was shown to fall with doping due to a decrease in the content of highly mobile interstitial oxygen and hampering of the cooperative oxygen transport mechanism. In the case of La1.7Ca0.3NiO4+δ, this leads to the appearance of a slow diffusion channel and a substantial decrease in the total diffusion coefficient value which results in a sharp increase in the polarization resistance of the electrodes. This phenomenon is not observed in materials with praseodymium and neodymium. The electrodes based on Pr1.7Ca0.3NiO4+δ and Nd1.7Ca0.3NiO4+δ, developed in this work, have an acceptable level of the electrochemical activity along with a high electrical conductivity and increased stability in comparison with undoped compositions and can be recommended for use as cathodes for intermediate temperature fuel cells.

AB - Progress in hydrogen energy and promising directions for its modern development are closely related to design of fuel cells, including solid oxide fuel cells, and solid state membranes for hydrogen, oxygen and synthesis gas production. A necessary condition for fabrication of economically competitive devices in this area is the use of cheap electrode materials combining high electrochemical activity and long-term stability. Ln2NiO4+δ oxides with the Ruddlesden–Popper layered structure possessing a high mixed ion-electron conductivity and moderate values of the coefficients of thermal expansion are promising materials for development of oxygen-conducting membranes and cathodes of intermediate-temperature solid oxide fuel cells. In this paper structural characteristics, electrical conductivity, oxygen mobility and electrochemical properties of Ln2-xCaxNiO4+δ (Ln = La, Pr, Nd; x = 0; 0.3) samples were studied to determine factors, which have the most significant effect on the electrochemical activity of electrodes and their stability. It was found that doping with calcium lead to stabilization of the structure and increased the electrical conductivity of materials. However, addition of calcium decreased the electrochemical activity of electrodes in varying degrees depending on the nature of lanthanide. There is no direct interrelation of such a decrease of activity with either the electrical properties or the interstitial oxygen content. We have revealed correlation of the polarization resistance of electrodes with characteristics of oxygen transfer in the electrode material (self-diffusion coefficient, surface exchange constant). Using the C18O2 SSITKA method, the total oxygen mobility in the doped materials was shown to fall with doping due to a decrease in the content of highly mobile interstitial oxygen and hampering of the cooperative oxygen transport mechanism. In the case of La1.7Ca0.3NiO4+δ, this leads to the appearance of a slow diffusion channel and a substantial decrease in the total diffusion coefficient value which results in a sharp increase in the polarization resistance of the electrodes. This phenomenon is not observed in materials with praseodymium and neodymium. The electrodes based on Pr1.7Ca0.3NiO4+δ and Nd1.7Ca0.3NiO4+δ, developed in this work, have an acceptable level of the electrochemical activity along with a high electrical conductivity and increased stability in comparison with undoped compositions and can be recommended for use as cathodes for intermediate temperature fuel cells.

KW - Cathode

KW - Hydrogen energy

KW - Isotopic exchange

KW - LnNiO

KW - Ruddlesden–Popper phases

KW - Solid oxide fuel cells

KW - Ln(2)NiO(4)

KW - Ruddlesden-Popper phases

KW - LA2NIO4+DELTA

KW - NONSTOICHIOMETRY

KW - CATHODE MATERIALS

KW - ELECTROLYTES

KW - IONIC TRANSPORT

KW - TEMPERATURE

KW - CONDUCTIVITY

KW - OXYGEN DIFFUSION

KW - OXIDES

KW - EXCHANGE

UR - http://www.scopus.com/inward/record.url?scp=85051023786&partnerID=8YFLogxK

U2 - 10.1016/j.ijhydene.2018.07.115

DO - 10.1016/j.ijhydene.2018.07.115

M3 - Article

AN - SCOPUS:85051023786

VL - 43

SP - 17373

EP - 17386

JO - International Journal of Hydrogen Energy

JF - International Journal of Hydrogen Energy

SN - 0360-3199

IS - 36

ER -

ID: 16072807