Discover the SciOpen Platform and Achieve Your Research Goals with Ease.
Search articles, authors, keywords, DOl and etc.
Solid oxide cell (SOC) can convert chemical energy of fuel into electrical energy in fuel cell mode or convert electrical energy into chemical energy in electrolysis cell mode. It has advantages of high conversion efficiency, fuel flexibility, etc., which is very attractive for the storage and conversion of renewable energy. The electrode, where the electrochemical reaction takes place, plays a key role in SOC performance. Compared with the traditional composite electrode materials, perovskite materials have attracted extensive attention because of their simple structure, strong structural tolerance and adjustable electrochemical properties. The Mn-based A-site layered double perovskite (LnBaMn2O5+δ, Ln = lanthanide) has fast oxygen ion migration channel and good catalytic activity for both fuel oxidation and oxygen reduction processes and shows good structural stability under a wide oxygen partial pressure. Therefore, it is widely used as an SOC electrode. The structural characteristics and the formation reasons of the Mn-based A-site double perovskites are introduced, and the modification strategies and the progress are summarized in this work. The prospects of the Mn-based A-site double perovskites are also prospected.
OLABI A G, ABDELKAREEM M A. Renewable energy and climate change [J]. Renewable and Sustainable Energy Reviews, 2022, 158: 112111.
EBBESEN S D, JENSEN S H, HAUCH A, et al. High temperature electrolysis in alkaline cells, solid proton conducting cells, and solid oxide cells [J]. Chemical Reviews, 2014, 114(21): 10697–10734.
MAHATO N, BANERJEE A, GUPTA A, et al. Progress in material selection for solid oxide fuel cell technology: A review [J]. Progress in Materials Science, 2015, 72: 141–337.
ZHENG Y, WANG J C, YU B, et al. A review of high temperature co-electrolysis of H2O and CO2 to produce sustainable fuels using solid oxide electrolysis cells (SOECs): advanced materials and technology [J]. Chemical Society Reviews, 2017, 46(5): 1427–1463.
STEELE B C H, HEINZEL A. Materials for fuel-cell technologies [J]. Nature, 2001, 414(6861): 345–352.
YAO Y, CAI P J, WANG S R. Journal of Ceramics, 2021, 42(4): 560–568.
ZHANG Y, ZHANG M, ZHAO H L. Progress in Chemistry, 2021, 34(2): 272–284.
SAMMELLS A F, COOK R L, WHITE J H, et al. Rational selection of advanced solid electrolytes for intermediate temperature fuel cells [J]. Solid State Ionics, 1992, 52(1/2/3): 111–123.
RAMADASS N. ABO3-type oxides—Their structure and properties—A bird’s eye view [J]. Materials Science and Engineering, 1978, 36(2): 231–239.
KING G, WOODWARD P M. Cation ordering in perovskites [J]. Journal of Materials Chemistry, 2010, 20(28): 5785–5796.
MOTOHASHI T, UEDA T, MASUBUCHI Y, et al. Remarkable oxygen intake/release capability of BaYMn2O5+δ: Applications to oxygen storage technologies [J]. Chemistry of Materials, 2010, 22(10): 3192–3196.
TONUS F, BAHOUT M, DORCET V, et al. Redox behavior of the SOFC electrode candidate NdBaMn2O5+δ investigated by high-temperature in situ neutron diffraction: First characterisation in real time of an LnBaMn2O5.5 intermediate phase [J]. Journal of Materials Chemistry A, 2016, 4(30): 11635–11647.
TASKIN A A, LAVROV A N, ANDO Y. Achieving fast oxygen diffusion in perovskites by cation ordering [J]. Applied Physics Letters, 2005, 86(9): 091910.
TASKIN A A, LAVROV A N, Ando Y. Fast oxygen diffusion in A-site ordered perovskites [J]. Progress in Solid State Chemistry, 2007, 35(2/3/4): 481–490.
CHEN M F, XU X, BAO S Y, et al. Remarkable switching of transport properties and surface exchange kinetics in epitaxial PrBaMn2O5+δ films [J]. Acta Materialia, 2020, 186: 517–522.
NAKAJIMA T, YOSHIZAWA H, UEDA Y. A-site randomness effect on structural and physical properties of Ba-based perovskite manganites [J]. Journal of the Physical Society of Japan, 2004, 73(8): 2283–2291.
ALIEV A M, GAMZATOV A G, BATDALOV A B, et al. Specific heat and low-field magnetocaloric effect in A-site ordered PrBaMn2O6 manganite [J]. Philosophical Magazine Letters, 2011, 91(5): 354–360.
PINEDA O L, MORENO Z L, ROUSSEL P, et al. Synthesis and preliminary study of the double perovskite NdBaMn2O5+δ as symmetric SOFC electrode material [J]. Solid State Ionics, 2016, 288: 61–67.
TSUJI E, MOTOHASHI T, NODA H, et al. Strong lanthanoid substitution effect on electrocatalytic activity of double-perovskite-type BaLnMn2O5 (Ln = Y, Gd, Nd, and La) for oxygen reduction reaction [J]. The Journal of Physical Chemistry C, 2018, 122(13): 7081–7087.
CAIGNAERT V, MILLANGE F, DOMENGES B, et al. A new ordered oxygen-deficient manganite perovskite: LaBaMn2O5.5. Crystal and magnetic structure [J]. Chemistry of Materials, 1999, 11(4): 930–938.
MILLANGE F, SUARD E, CAIGNAERT V, et al. YBaMn2O5: Crystal and magnetic structure reinvestigation [J]. Materials Research Bulletin, 1999, 34(1): 1–9.
SENGODAN S, JU Y W, KWON O, et al. Self-decorated MnO nanoparticles on double perovskite solid oxide fuel cell anode by in situ exsolution [J]. ACS Sustainable Chemistry & Engineering, 2017, 5(10): 9207–9213.
TONUS F, BAHOUT M, DORCET V, et al. A-site order–disorder in the NdBaMn2O5+δ SOFC electrode material monitored in situ by neutron diffraction under hydrogen flow [J]. Journal of Materials Chemistry A, 2017, 5(22): 11078–11085.
SENGODAN S, CHOI S, JUN A, et al. Layered oxygen-deficient double perovskite as an efficient and stable anode for direct hydrocarbon solid oxide fuel cells [J]. Nature Materials, 2015, 14(2): 205–209.
ABDALLA A M, HOSSAIN S, PETRA P M I, et al. Novel layered perovskite SmBaMn2O5+δ for SOFCs anode material [J]. Materials Letters, 2017, 204: 129–132.
SUN Y F, LI J H, ZHANG Y Q, et al. Bifunctional catalyst of core-shell nanoparticles socketed on oxygen-deficient layered perovskite for soot combustion: in situ observation of synergistic dual active sites [J]. ACS Catalysis, 2016, 6(4): 2710–2714.
BAHOUT M, MANAGUTTI P B, DORCET V, et al. In situ exsolution of Ni particles on the PrBaMn2O5 SOFC electrode material monitored by high temperature neutron powder diffraction under hydrogen [J]. Journal of Materials Chemistry A, 2020, 8(7): 3590–3597.
MONTEIRO N K, CANDIDO G A S, FONSECA F C. Synthesis of Ru-doped double perovskite anode for SOFC [J]. ECS Transactions, 2017, 78(1): 1245.
LI N, LUO J, JIA L, et al. Ni-exsolved PrBaMn2-xNixO6-δ–based catalysts for high performance of ethanol steam reforming [J]. Materials Today Energy, 2020, 18: 100512.
MANAGUTTI P B, TYMEN S, LIU X, et al. Exsolution of Ni nanoparticles from A-site-deficient layered double perovskites for dry reforming of methane and as an anode material for a solid oxide fuel cell [J]. ACS Applied Materials & Interfaces, 2021, 13(30): 35719–35728.
KWON O, SENGODAN S, KIM K, et al. Exsolution trends and co-segregation aspects of self-grown catalyst nanoparticles in perovskites [J]. Nature Communications, 2017, 8(1): 1–7.
JOO S, KWON O, KIM K, et al. Cation-swapped homogeneous nanoparticles in perovskite oxides for high power density [J]. Nature Communications, 2019, 10(1): 1–9.
HOU N J, YAO T T, LI P, et al. A-site ordered double perovskite with in situ exsolved core-shell nanoparticles as anode for solid oxide fuel cells [J]. ACS Applied Materials & Interfaces, 2019, 11(7): 6995–7005.
KIM S, KIM C, LEE J H, et al. Tailoring Ni-based catalyst by alloying with transition metals (M = Ni, Co, Cu, and Fe) for direct hydrocarbon utilization of energy conversion devices [J]. Electrochimica Acta, 2017, 225: 399–406.
KWON O, KIM K, JOO S, et al. Self-assembled alloy nanoparticles in a layered double perovskite as a fuel oxidation catalyst for solid oxide fuel cells [J]. Journal of Materials Chemistry A, 2018, 6(33): 15947–15953.
JUN A, KIM J, SHIN J, et al. Achieving high efficiency and eliminating degradation in solid oxide electrochemical cells using high oxygen‐capacity perovskite [J]. Angewandte Chemie International Edition, 2016, 55(40): 12512–12515.
SHIN T H, MYUNG J H, VERBRAEKEN M, et al. Oxygen deficient layered double perovskite as an active cathode for CO2 electrolysis using a solid oxide conductor [J]. Faraday Discussions, 2015, 182: 227–239.
ZHU J X, ZHANG W Q, LI Y F, et al. Enhancing CO2 catalytic activation and direct electroreduction on in-situ exsolved Fe/MnO x nanoparticles from (Pr, Ba)2Mn2-yFeyO5+δ layered perovskites for SOEC cathodes [J]. Applied Catalysis B: Environmental, 2020, 268: 118389.
SUN Y F, WU Y Y, ZHANG Y Q, et al. A bifunctional solid oxide electrolysis cell for simultaneous CO2 utilization and synthesis gas production [J]. Chemical Communications, 2016, 52(94): 13687–13690.
SUN Y F, ZHANG Y Q, CHEN J, et al. New opportunity for in situ exsolution of metallic nanoparticles on perovskite parent [J]. Nano Letters, 2016, 16(8): 5303–5309.
OLSZEWSKA A, ZHANG Y, DU Z H, et al. Mn-rich SmBaCo0.5Mn1.5O5+δ double perovskite cathode material for SOFCs [J]. International Journal of Hydrogen Energy, 2019, 44(50): 27587–27599.
YOO S, JUN A, JU Y W, et al. Development of double‐perovskite compounds as cathode materials for low‐temperature solid oxide fuel cells [J]. Angewandte Chemie, 2014, 126(48): 13280–13283.
TAO H L, XIE J J, WANG S R. Journal of Ceramics, 2019, 40(2): 131–138.
ZHANG Y, ZHAO H, DU Z H, et al. High-performance SmBaMn2O5+δ electrode for symmetrical solid oxide fuel cell [J]. Chemistry of Materials, 2019, 31(10): 3784–3793.
CHOI S, SENGODAN S, PARK S, et al. A robust symmetrical electrode with layered perovskite structure for direct hydrocarbon solid oxide fuel cells: PrBa0.8Ca0.2Mn2O5+δ [J]. Journal of Materials Chemistry A, 2016, 4(5): 1747–1753.
ZHAO L, CHEN K F, LIU Y X, et al. A novel layered perovskite as symmetric electrode for direct hydrocarbon solid oxide fuel cells [J]. Journal of Power Sources, 2017, 342: 313–319.
GU Y H, ZHANG Y L, ZHENG Y F, et al. PrBaMn2O5+δ with praseodymium oxide nano-catalyst as electrode for symmetrical solid oxide fuel cells [J]. Applied Catalysis B: Environmental, 2019, 257: 117868.
KIM S, LEE S, KIM J, et al. Self-transforming configuration based on atmospheric-adaptive materials for solid oxide cells [J]. Scientific Reports, 2018, 8(1): 1–7.
KHARTON V V, YAREMCHENKO A A, PATRAKEEV M V, et al. Thermal and chemical induced expansion of La0.3Sr0.7(Fe, Ga)O3-δ ceramics [J]. Journal of the European Ceramic Society, 2003, 23(9): 1417–1426.
ZHANG Y, ZHANG B Z, ZHAO H L, et al. Electrochemical performance and structural durability of Mg-doped SmBaMn2O5+δ layered perovskite electrode for symmetrical solid oxide fuel cell [J]. Catalysis Today, 2021, 364: 80–88.