Synergistically enhanced anode performance of PrBaMn2O5+δ for proton ceramic fuel cells via nickel doping and exsolution

Xingyu Duan , Fuzhong Wu , Jie Tang , Wei Wang , Yongwang Zhao , Jialu Qu , Xinyi Dai , Zhihua Zhao , Li Wang , Sining Yun , Shengli An

Energy Materials ›› 2026, Vol. 6 ›› Issue (1) : 600009

PDF
Energy Materials ›› 2026, Vol. 6 ›› Issue (1) :600009 DOI: 10.20517/energymater.2025.158
Article

Synergistically enhanced anode performance of PrBaMn2O5+δ for proton ceramic fuel cells via nickel doping and exsolution

Author information +
History +
PDF

Abstract

Proton ceramic fuel cells (PCFCs) are considered highly efficient energy conversion devices, yet their performance is strongly governed by the catalytic activity and stability of anode materials. Although PrBaMn2O5+δ (R-PBM) has demonstrated intrinsic tolerance to hydrocarbon fuels, its electrochemical activity at intermediate and low temperatures remains insufficient for practical reversible PCFCs (r-PCFCs) applications. Therefore, a Ni-doped R-PBM anode material, PrBaMn1.95Ni0.05O5+δ (R-PBMN), was studied in this work. The in situ exsolution of Ni nanoparticles after partial Ni substitution for Mn sites significantly improved the anode activity. The exsolved Ni nanoparticles effectively lower the activation energy for C-H bond cleavage, thereby enhancing methane activation and decomposition. Meanwhile, the R-PBMN lattice provides intrinsic hydrophilicity and high proton mobility, which enable cooperative CH4/H2O activation and facilitate the formation of CHxOH* intermediates that suppress carbon deposition. As a result, R-PBMN exhibits substantially enhanced electrochemical performance. At 650 °C, R-PBMN demonstrated substantially lower polarization resistance than R-PBM: 0.56 Ω cm2 in H2 and 3.38 Ω cm2 in CH4, representing a 90% and 55% reduction, respectively, while retaining a high impedance stability for 120 h in methane-steam atmosphere. At 700 °C, the peak power density of R-PBMN in H2 and CH4 reached 0.82 and 0.64 W cm-2, respectively, a 15.5% and 18.5% increase compared to R-PBM. Furthermore, the R-PBMN anode retained the intrinsic coking resistance of the Pr0.5Ba0.5MnO3-δ (PBM) framework, ensuring stable operation for 100 h in a 50% H2O/CH4 atmosphere. This work highlights a cooperative design strategy that transforms PBM from a hydrocarbon-tolerant but low-activity oxide into a high-performance PCFC anode with balanced activity and durability.

Keywords

In situ exsolution / lattice structure modulation / methane steam reforming / electrochemical performance / fuel electrode / proton ceramic cells

Cite this article

Download citation ▾
Xingyu Duan, Fuzhong Wu, Jie Tang, Wei Wang, Yongwang Zhao, Jialu Qu, Xinyi Dai, Zhihua Zhao, Li Wang, Sining Yun, Shengli An. Synergistically enhanced anode performance of PrBaMn2O5+δ for proton ceramic fuel cells via nickel doping and exsolution. Energy Materials, 2026, 6(1): 600009 DOI:10.20517/energymater.2025.158

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Xie M,Duan X,Yang H.Review on Fe-based double perovskite cathode materials for solid oxide fuel cells.Energy Mater2024;4:400007

[2]

He F,Wu T.Catalytic self‐assembled air electrode for highly active and durable reversible protonic ceramic electrochemical cells.Adv Funct Mater2022;32:2206756

[3]

Bian W,Gao Y.Regulation of cathode mass and charge transfer by structural 3D engineering for protonic ceramic fuel cell at 400 °C (Adv. Funct. Mater. 33/2021).Adv Funct Mater2021;31:2170244

[4]

Duan C,Zhu H.Highly durable, coking and sulfur tolerant, fuel-flexible protonic ceramic fuel cells.Nature2018;557:217-22

[5]

He F,Liu D.Phase segregation of a composite air electrode unlocks the high performance of reversible protonic ceramic electrochemical cells.Energy Environ Sci2024;17:3898-907

[6]

Bian W,Wang B.Revitalizing interface in protonic ceramic cells by acid etch.Nature2022;604:479-85

[7]

Hong K,Bae Y.Direct methane protonic ceramic fuel cells with self-assembled Ni-Rh bimetallic catalyst.Nat Commun2023;14:7485 PMCID:PMC10657466

[8]

Sengodan S,Jun A.Layered oxygen-deficient double perovskite as an efficient and stable anode for direct hydrocarbon solid oxide fuel cells.Nat Mater2015;14:205-9

[9]

Wang W,Wu Y,Shao Z.Progress in solid oxide fuel cells with nickel-based anodes operating on methane and related fuels.Chem Rev2013;113:8104-51

[10]

Hu F,Ling Y.Smart dual-exsolved self-assembled anode enables efficient and robust methane-fueled solid oxide fuel cells.Adv Sci2024;11:e2306845 PMCID:PMC10787062

[11]

Yan J,Li YW,Shao Z.Bifunctional electrocatalysts Pr0.5Sr0.5Cr0.1Fe0.9-xNixO3-δ (x = 0.1, 0.2) for the HOR and ORR of a symmetric solid oxide fuel cell.J Mater Chem A2023;11:21839-45

[12]

Song L,Pan J.B-site super-excess design Sr2V0.4Fe0.9Mo0.7O6-δ-Ni0.4 as a Highly active and redox-stable solid oxide fuel cell anode.ACS Appl Mater Interfaces2023;15:48296-303

[13]

Liu F,Wang Z.Synergistic effects of in-situ exsolved Ni-Ru bimetallic catalyst on high-performance and durable direct-methane solid oxide fuel cells.J Am Chem Soc2024;146:4704-15

[14]

Liu F,Hussain AM.Nanocomposite catalyst for high-performance and durable intermediate-temperature methane-fueled metal-supported solid oxide fuel cells.ACS Appl Mater Interfaces2022;14:53840-9

[15]

Bahout M,Dorcet V,Paofai S.In situ exsolution of Ni particles on the PrBaMn2O5 SOFC electrode material monitored by high temperature neutron powder diffraction under hydrogen.J Mater Chem A2020;8:3590-7

[16]

Song Y,Jang J.Pt3Ni alloy nanoparticle electro‐catalysts with unique core‐shell structure on oxygen‐deficient layered perovskite for solid oxide cells.Adv Energy Mater2023;13:2302384

[17]

Wang Z,Py B.DRTtools: freely accessible distribution of relaxation times analysis for electrochemical impedance spectroscopy.ACS Electrochem2025;1:2680-9

[18]

Wan T,Chen C.Influence of the discretization methods on the distribution of relaxation times deconvolution: implementing radial basis functions with DRTtools.Electrochim Acta2015;184:483-99

[19]

Yin Y,Yu S,Traversa E.Tailoring cobalt‐free La0.5Sr0.5FeO3‐δ cathode with a nonmetal cation‐doping strategy for high‐performance proton‐conducting solid oxide fuel cells.SusMat2022;2:607-16

[20]

Guo Y,Li R.In situ exsolved CoFe alloy nanoparticles for stable anodic methane reforming in solid oxide electrolysis cells.Joule2024;8:2016-32

[21]

Yao S,Liu Y.High flux and stability of cationic intercalation in transition-metal oxides: unleashing the potential of Mn t2g orbital via enhanced π-donation.J Am Chem Soc2023;145:26699-710

[22]

Li W,Yang T.Layer-structured triple-conducting electrocatalyst for water-splitting in protonic ceramic electrolysis cells: Conductivities vs. activity.J Power Sources2021;495:229764

[23]

Wang N,Du L.Advanced cathode materials for protonic ceramic fuel cells: recent progress and future perspectives (Adv. Energy Mater. 34/2022).Adv Energy Mater2022;12:2270145

[24]

Ding H,Jiang C.Self-sustainable protonic ceramic electrochemical cells using a triple conducting electrode for hydrogen and power production.Nat Commun2020;11:1907 PMCID:PMC7171140

[25]

Zhou C,Liu D.New strategy for boosting cathodic performance of protonic ceramic fuel cells through incorporating a superior hydronation second phase.Energy Environ Mater2024;7:e12660

[26]

Shao S,Cai Y.Interfacial metal ion self-rearrangement: a new strategy for endowing hybrid cathode with enhanced performance for protonic ceramic fuel cells.Chem Eng J2023;460:141698

[27]

Yao X,Bai X.Enlarging the three-phase boundary to raise CO2/CH4 conversions on exsolved Ni-Fe alloy perovskite catalysts by minimal Rh doping.ACS Catal2024;14:5639-53

[28]

Bang S,Wen Y,Lee W.Equalized oxygen partial pressure for carbon coking-free dry reforming of methane in intermediate temperature solid oxide fuel cells.Chem Eng J2025;514:163163

[29]

Liu Y,Li C.BaCe0.8Fe0.1Ni0.1O3-δ-impregnated Ni-GDC by phase-inversion as an anode of solid oxide fuel cells with on-cell dry methane reforming.J Adv Ceram2024;13:834-41

[30]

Wang H,Lu H.Facilitating the dry reforming of methane with interfacial synergistic catalysis in an Ir@CeO2-x catalyst.Nat Commun2024;15:3765 PMCID:PMC11069590

[31]

Zhang X,Wang Q.Enhanced photothermal methane dry reforming through electronic interactions between nickel and yttrium.Nanoscale Horiz2025;10:905-14

[32]

Li Y,Li J.GaN nanowire-supported NiO for low-temperature and durable dry reforming of methane toward syngas.Appl Catal B Environ Energy2025;366:125051

[33]

Chen J,Chen Z.Highly efficient transformation of tar model compounds into hydrogen by a Ni-Co alloy nanocatalyst during tar steam reforming.Environ Sci Technol2024;58:3540-51

[34]

Han F,Zhang S,Barnett SA.Highly efficient perovskite-based fuel electrodes for solid oxide electrochemical cells via in-situ nanoparticle exsolution and electron conduction enhancement.Appl Catal B Environ Energy2025;361:124676

[35]

Wang S,Zhou Y.All symmetrical metal supported solid oxide fuel cells.J Inorg Mater2016;31:769

[36]

Gu Y,Zheng Y,Ge L.PrBaMn2O5+δ with praseodymium oxide nano-catalyst as electrode for symmetrical solid oxide fuel cells.Appl Catal B Environ2019;257:117868

[37]

Wang S,Wu Y.Characterization of Pr0.5A0.5Fe0.9W0.1O3-δ (A = Ca, Sr and Ba) as symmetric electrodes for solid oxide fuel cells.Sustain Energy Fuels2022;6:4741-8

[38]

Li X,Tian Y.Tuning Pr0.5Ba0.5FeO3-δ cathode to enhanced stability and activity via Ca-doping for symmetrical solid oxide fuel cells.Int J Hydrogen Energy2024;60:650-6

[39]

Zhang W,Zhang X,Liu X.Co-incorporating enhancement on oxygen vacancy formation energy and electrochemical property of Sr2Co1+xMo1-xO6-δ cathode for intermediate-temperature solid oxide fuel cell.Solid State Ion2018;316:20-8

[40]

Zhou J,Ni C.In situ growth of nanoparticles in layered perovskite La0.8Sr1.2Fe0.9Co0.1O4-δ as an active and stable electrode for symmetrical solid oxide fuel cells.Chem Mater2016;28:2981-93

[41]

Fan W,Bai Y,Cheng Y.Highly stable and efficient perovskite ferrite electrode for symmetrical solid oxide fuel cells.ACS Appl Mater Interfaces2019;11:23168-79

[42]

Yu Y,Shao K.BaZr0.1Co0.4Fe0.4Y0.1O3-SDC composite as quasi-symmetrical electrode for proton conducting solid oxide fuel cells.Ceram Int2020;46:11811-8

[43]

Escudero M,Alonso J.A kinetic study of oxygen reduction reaction on La2NiO4 cathodes by means of impedance spectroscopy.J Electroanal Chem2007;611:107-16

[44]

Liu X,Xi X.Regulating the d-p orbital hybridization in BaCo0.4Fe0.4Zr0.1Y0.1O3-δ via Cu doping for high-performance solid oxide fuel cells cathode.Chem Eng J2025;513:162958

[45]

Cao X,Zhao K,Wu X.Surface decomposition of doped PrBaMn2O5+δ induced by in situ nanoparticle exsolution: quantitative characterization and catalytic effect in methane dry reforming reaction.Chem Mater2022;34:10484-94

[46]

Li J,Wu C.Self-stabilized hybrid cathode for solid oxide fuel cell: a-site deficient perovskite coating as solid solution for strontium diffusion.Chem Eng J2022;438:135446

PDF

57

Accesses

0

Citation

Detail

Sections
Recommended

/