Composition-regulated lattice strain of PdSn/C for boosting C1 pathway in ethanol electrooxidation

Yin Cai , Yi Tao , Jie Ding , Fuhua Li , Rongsheng Chen , Tao Ma , Feng Liang

Energy Materials ›› 2025, Vol. 5 ›› Issue (4) : 500038

PDF
Energy Materials ›› 2025, Vol. 5 ›› Issue (4) :500038 DOI: 10.20517/energymater.2024.91
Article

Composition-regulated lattice strain of PdSn/C for boosting C1 pathway in ethanol electrooxidation

Author information +
History +
PDF

Abstract

The rational design of Pd-based catalysts to enhance their applications in ethanol oxidation reaction (EOR) presents both exciting opportunities and significant challenges. Herein, a series of carbon-supported PdSn nanoparticle catalysts (PdSn/C-X, X = 0.1, 0.5, 1, 2) with tunable lattice strains were synthesized using a facile method at room temperature and applied to the EOR. Our findings demonstrate that the activity and stability of EOR can be modulated by manipulating the lattice strain in Pd-based catalysts. Remarkably, PdSn/C-1 exhibits an excellent mass current density of 8,452.3 mA/mgPd, which is higher than that of most Pd-based catalysts, along with great stability, maintaining a mass activity of 573.9 mA/mgPd after 5,000 s. By combining structural analysis, in situ spectral characterization, and theoretical calculation, we elucidate that the optimal tensile strain adjusted by Sn composition in PdSn/C optimizes the free energy of the key intermediate (*CH2CO) during EOR, thereby favoring the C1 pathway and enhancing catalytic activity. This study demonstrates that by controlling the composition, the lattice strain can be altered to improve catalytic performance of Pd-based catalysts in EOR.

Keywords

Pd-based catalysts / composition regulation / lattice strain / ethanol oxidation reaction / C1 pathway

Cite this article

Download citation ▾
Yin Cai, Yi Tao, Jie Ding, Fuhua Li, Rongsheng Chen, Tao Ma, Feng Liang. Composition-regulated lattice strain of PdSn/C for boosting C1 pathway in ethanol electrooxidation. Energy Materials, 2025, 5(4): 500038 DOI:10.20517/energymater.2024.91

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Nguyen AQK,Huynh STM.Milestones of electrocatalyst development for direct alcohol fuel cells.Adv Sustain Syst2023;7:2300205

[2]

Gul Sial MA, Ud Din MA, Wang X. Multimetallic nanosheets: synthesis and applications in fuel cells.Chem Soc Rev2018;47:6175-200

[3]

Zhao Y,Wang J.An efficient direct ammonia fuel cell for affordable carbon-neutral transportation.Joule2019;3:2472-84

[4]

Shekhawat A,Panigrahy S.Electrocatalytic oxidation of urea and ethanol on two-dimensional amorphous nickel oxide encapsulated on N-doped carbon nanosheets.ACS Appl Energy Mater2023;6:3135-46

[5]

Chen T,Zhao T.Accelerating ethanol complete electrooxidation via introducing ethylene as the precursor for the C-C bond splitting.Angew Chem Int Ed2023;62:e202308057

[6]

Luo S,Liao Y.A tensile-strained Pt-Rh single-atom alloy remarkably boosts ethanol oxidation.Adv Mater2021;33:e2008508

[7]

Wang Y,Li Y.p-d orbital hybridization induced by a monodispersed Ga site on a Pt3Mn nanocatalyst boosts ethanol electrooxidation.Angew Chem Int Ed2022;61:e202115735

[8]

Monyoncho EA,Michel C,Woo TK.Ethanol electro-oxidation on palladium revisited using polarization modulation infrared reflection absorption spectroscopy (PM-IRRAS) and density functional theory (DFT): why is it difficult to break the C-C bond?.ACS Catal2016;6:4894-906

[9]

Zhou X,Ge Y.Preparation of Au@Pd core-shell nanorods with fcc-2H-fcc heterophase for highly efficient electrocatalytic alcohol oxidation.J Am Chem Soc2022;144:547-55

[10]

Luo M.Strain-controlled electrocatalysis on multimetallic nanomaterials.Nat Rev Mater2017;2:17059

[11]

Yang X,Chen S.A phosphorus-doped Ag@Pd catalyst for enhanced C-C bond cleavage during ethanol electrooxidation.Small2020;16:e2004727

[12]

Huang W,Wang H.Promoting effect of Ni(OH)2 on palladium nanocrystals leads to greatly improved operation durability for electrocatalytic ethanol oxidation in alkaline solution.Adv Mater2017;29:1703057

[13]

Wang L,Zhang S.In situ assembly of ultrafine AuPd nanowires as efficient electrocatalysts for ethanol electroxidation.Int J Hydrogen Energy2021;46:8549-56

[14]

Wang J,Liu H.High-performance electrocatalytic reduction of CO2 to CO by ultrathin PdCu alloy nanosheets.Sep Purif Technol2023;320:124186

[15]

Liu D,Hu C.Core-shell CuPd@NiPd nanoparticles: coupling lateral strain with electronic interaction toward high-efficiency electrocatalysis.ACS Catal2022;12:9092-100

[16]

Wang H,Ling L.Pd metallene aerogels with single-atom W doping for selective ethanol oxidation.ACS Nano2022;16:21266-74

[17]

Zhang Y,Ge X.Single-atom Sn on tensile-strained ZnO nanosheets for highly efficient conversion of CO2 into formate.Adv Energy Mater2022;12:2202695

[18]

Feng C,Shao J.Lattice strain engineering of Ni2P enables efficient catalytic hydrazine oxidation-assisted hydrogen production.Adv Mater2023;35:e2305598

[19]

Cheng W,Su H.Lattice-strained metal-organic-framework arrays for bifunctional oxygen electrocatalysis.Nat Energy2019;4:115-22

[20]

He F,Yang X.Spin-state modulation on metal-organic frameworks for electrocatalytic oxygen evolution.Adv Mater2023;35:e2304022

[21]

Xu L,Gao F,Gao H.Strain engineering of face-centered cubic Pd-Pb nanosheets boosts electrocatalytic ethanol oxidation.ACS Appl Energy Mater2023;6:2471-8

[22]

Zhang G,Yang Z.Hydrogen-induced p-d orbital hybridization and tensile strain of PdGa single-atom alloy metallene boosts complete electrooxidation of ethanol.Appl Catal B Environ2024;342:123377

[23]

Han S,Yun Q.The synergy of tensile strain and ligand effect in PtBi nanorings for boosting electrocatalytic alcohol oxidation.Adv Funct Mater2022;32:2208760

[24]

You J,Fan G.Component dependent electrocatalytic activity of magnetic bimetallic Pd-Ni nanoparticles for formate oxidation.Mater Lett2023;343:134387

[25]

Liang Y,Xiong Y,Yu H.Highly efficient blackberry-like trimetallic PdAuCu nanoparticles with optimized Pd content for ethanol electrooxidation.Nanoscale2021;13:9960-70

[26]

Zou S,Li J.Novel leaflike Cu-O-Sn nanosheets as highly efficient catalysts for the Rochow reaction.J Catal2016;337:1-13

[27]

Hidalgo MC,Navío JA.Photodeposition of gold on titanium dioxide for photocatalytic phenol oxidation.Appl Catal A General2011;397:112-20

[28]

Maicu M,Colón G.Comparative study of the photodeposition of Pt, Au and Pd on pre-sulphated TiO2 for the photocatalytic decomposition of phenol.J Photoch Photobio A Chem2011;217:275-83

[29]

Primo A,García H.Titania supported gold nanoparticles as photocatalyst.Phys Chem Chem Phys2011;13:886-910

[30]

Salomé S,Botelho do Rego AM,Savadogo O.Enhanced activity and durability of novel activated carbon-supported PdSn heat-treated cathode catalyst for polymer electrolyte fuel cells.Electrochim Acta2016;192:268-82

[31]

Ye N,Zhang R,Jiang Z.Interfacial electron engineering of PdSn-NbN/C for highly efficient cleavage of the C-C bonds in alkaline ethanol electrooxidation.Small2024;20:e2304990

[32]

Yang X,Tong X.Strain engineering in electrocatalysts: fundamentals, progress, and perspectives.Adv Energy Mater2022;12:2102261

[33]

Wang W,Yang Y,Chai D.PdSn alloy supported on phenanthroline-functionalized carbon as highly active electrocatalysts for glycerol oxidation.Int J Hydrogen Energy2016;41:1272-80

[34]

Spinacé EV,Neto AO.Co-catalytic effect of nickel in the electro-oxidation of ethanol on binary Pt-Sn electrocatalysts.Electrochem Commun2005;7:365-9

[35]

Okamoto H.Pd-Sn (Palladium-Tin).J Phase Equilib Diffus2012;33:253-4

[36]

Dietrich C,Uzunidis G,Träutlein Y.Bimetallic Pd/Sn-based nanoparticles and their catalytic properties in the semihydrogenation of diphenylacetylene.ChemistryOpen2021;10:296-304 PMCID:PMC7944562

[37]

Lanza R,Conte L.Effect of crystalline phase and composition on the catalytic properties of PdSn bimetallic nanoparticles in the PROX reaction.J Phys Chem C2014;118:25392-402

[38]

Wang KW,Wei YC.Promotion of PdCu/C catalysts for ethanol oxidation in alkaline solution by SnO2 modifier.ChemCatChem2012;4:1154-61

[39]

Wu L,Li X.Characterization and photocatalytic properties of SnO2-TiO2 nanocomposites prepared through gaseous detonation method.Ceram Int2017;43:1517-21

[40]

Wei Z,Duan X.Enhancing selective electrochemical CO2 reduction by in situ constructing tensile-strained Cu catalysts.ACS Catal2023;13:4711-8

[41]

Li T,Zhang L.Tailoring the chemisorption manner of Fe d-band center with La2O3 for enhanced oxygen reduction in anion exchange membrane fuel cells.Adv Funct Mater2024;34:2309886

[42]

Nørskov JK,Studt F.Density functional theory in surface chemistry and catalysis.Proc Natl Acad Sci USA2011;108:937-43 PMCID:PMC3024687

[43]

Zhao C,Gao Y.D-orbital manipulated Ru nanoclusters for high-efficiency overall water splitting at industrial-level current densities.Adv Funct Mater2024;34:2307917

[44]

Zamora Zeledón JA,Gunasooriya GTKK.Tuning the electronic structure of Ag-Pd alloys to enhance performance for alkaline oxygen reduction.Nat Commun2021;12:620 PMCID:PMC7840808

[45]

Gao Q,Liu S.Monodisperse PdSn/SnOx core/shell nanoparticles with superior electrocatalytic ethanol oxidation performance.J Mater Chem A2020;8:20931-8

[46]

Pu Y,Stockmann JM.Surface galvanic formation of Co-OH on Birnessite and its catalytic activity for the oxygen evolution reaction.J Catal2021;396:304-14

[47]

Ahmed MS.Highly active graphene-supported NixPd100-x binary alloyed catalysts for electro-oxidation of ethanol in an alkaline media.ACS Catal2014;4:1830-7

[48]

Guo RH,Wei TC.Electrochemical behavior of CO2 reduction on palladium nanoparticles: dependence of adsorbed CO on electrode potential.Electrochem Commun2017;80:24-8

[49]

Gao D,Cai F.Switchable CO2 electroreduction via engineering active phases of Pd nanoparticles.Nano Res2017;10:2181-91

[50]

Torralba E,Cachet-Vivier C,González J.Electrochemical study of carbon dioxide reduction at copper-palladium nanoparticles: influence of the bimetallic composition in the CO poisoning tolerance.Electrochim Acta2020;354:136739

[51]

Qiu L,Ma T.Synergistic effect of trimetallic PdCuIn nanoparticles in ethanol and formate oxidation reaction for remarkable catalytic performance.Energy Technol2024;12:2301618

[52]

Zhang Y,Liu T.Rhombohedral Pd-Sb nanoplates with Pd-terminated surface: an efficient bifunctional fuel-cell catalyst.Adv Mater2022;34:e2202333

[53]

Demarconnay L,Coutanceau C.Ethylene glycol electrooxidation in alkaline medium at multi-metallic Pt based catalysts.J Electroanal Chem2007;601:169-80

[54]

Han C,Wang S.Highly utilized active sites on Pt@Cu/C for ethanol electrocatalytic oxidation in alkali metal hydroxide solutions.Adv Funct Mater2023;33:2305436

[55]

Liang Z,Deng S.Direct 12-electron oxidation of ethanol on a ternary Au(core)-PtIr(Shell) electrocatalyst.J Am Chem Soc2019;141:9629-36

[56]

Zhang J,Fan Q.Cyclic penta-twinned rhodium nanobranches as superior catalysts for ethanol electro-oxidation.J Am Chem Soc2018;140:11232-40

[57]

Torrero J,Peña MA,Rojas S.Insights on the electrooxidation of ethanol with Pd-based catalysts in alkaline electrolyte.Int J Hydrogen Energy2019;44:31995-2002

[58]

Farsadrooh M,Pascual L,Retuerto M.Two-dimensional Pd-nanosheets as efficient electrocatalysts for ethanol electrooxidation. Evidences of the C-C scission at low potentials.Appl Catal B Environ2018;237:866-75

[59]

Wu R.A density functional theory study on the mechanism of complete ethanol oxidation on Ir(100): surface diffusion-controlled C-C bond cleavage.J Phys Chem C2020;124:26953-64

[60]

Wang Y,Cai WB.Recent Advances on electro-oxidation of ethanol on Pt- and Pd-based catalysts: from reaction mechanisms to catalytic materials.Catalysts2015;5:1507-34

PDF

81

Accesses

0

Citation

Detail

Sections
Recommended

/