Continuous-flow electrooxidation for scalable biomass upgrading over copper-supported CoFe Prussian blue analogues

Bowen Zhang , Tiantian Xiao , Cejun Hu , Zhichen Liu , Peng Chen , Zhengyu Zhao , Duanjing Lai , Jinming Huang , Hongwei Zhang , Xiaojun Bao , Pei Yuan

Chemical Synthesis ›› 2025, Vol. 5 ›› Issue (1) : 18

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Chemical Synthesis ›› 2025, Vol. 5 ›› Issue (1) :18 DOI: 10.20517/cs.2024.37
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Continuous-flow electrooxidation for scalable biomass upgrading over copper-supported CoFe Prussian blue analogues

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Abstract

Electrochemical biomass upgrading is a promising substitute for oxygen evolution reaction (OER) to generate valuable chemicals in conjunction with hydrogen generation. Pursuing highly efficient and durable electrocatalysts for significant concentration levels (≥ 50 mM) of biomass electrooxidation remains an enduring challenge. Herein, we introduce a robust Cu-supported CoFe Prussian blue analogue (CoFe PBA/CF) electrocatalyst, adept at facilitating high-concentration (50 mM) 5-hydroxymethylfurfural (HMF) oxidation into 2,5-furandicarboxylic acid (FDCA), achieving an exceptional HMF conversion (100%) with a notable FDCA yield of 98.4%. The influence of copper substrate and adsorption energy are therefore discussed. Impressively, the CoFe PBA/CF electrode sustains considerable durability in a continuous-flow electrochemical reactor designed for consecutive FDCA production, showcasing FDCA yields of 100/94% at flow rates of 0.4/0.8 mL·min-1 over 60 h’ uninterrupted electrolysis. This work provides a promising strategy to develop highly efficient and robust electrocatalysts for the consecutive production of high-value products coupled with green H2 production.

Keywords

5-hydroxymethylfurfural oxidation / high concentration / structural reconstruction / electrochemical conversion / CoFe Prussian blue analogues

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Bowen Zhang, Tiantian Xiao, Cejun Hu, Zhichen Liu, Peng Chen, Zhengyu Zhao, Duanjing Lai, Jinming Huang, Hongwei Zhang, Xiaojun Bao, Pei Yuan. Continuous-flow electrooxidation for scalable biomass upgrading over copper-supported CoFe Prussian blue analogues. Chemical Synthesis, 2025, 5(1): 18 DOI:10.20517/cs.2024.37

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References

[1]

Gao G,Chen X,Cabot A.Optimizing Pt-based alloy electrocatalysts for improved hydrogen evolution performance in alkaline electrolytes: a comprehensive review.ACS Nano2023;17:20804-24

[2]

Wang J,Yang Y.Earth-abundant transition-metal-based bifunctional catalysts for overall electrochemical water splitting: a review.J Alloys Compd2020;819:153346

[3]

Yang Q,Yuan P.Single carbon vacancy traps atomic platinum for hydrogen evolution catalysis.J Am Chem Soc2022;144:2171-8

[4]

Liu W,Tang J.Energy-efficient anodic reactions for sustainable hydrogen production via water electrolysis.Chem Synth2023;3:44

[5]

Zhuang L,Liu H.Sulfur-modified oxygen vacancies in iron-cobalt oxide nanosheets: enabling extremely high activity of the oxygen evolution reaction to achieve the industrial water splitting benchmark.Angew Chem Int Ed Engl2020;59:14664-70

[6]

Wang B,He Y.Fe2O3/P-doped CoMoO4 electrocatalyst delivers efficient overall water splitting in alkaline media.Appl Catal B Environ2024;346:123741

[7]

Wang C,Wang Y,Zhou J.Recent advances in nonmetallic modulation of palladium-based electrocatalysts.Chem Synth2023;3:8

[8]

Zhang J,Feng X.Support and interface effects in water-splitting electrocatalysts.Adv Mater2019;31:e1808167

[9]

Walter MG,McKone JR.Solar water splitting cells.Chem Rev2010;110:6446-73

[10]

Urbańczyk E,Stolarczyk A,Simka W.The electrocatalytic oxidation of urea on nickel-graphene and nickel-graphene oxide composite electrodes.Electrochim Acta2019;305:256-63

[11]

Hu S,Ma Y,Zhang L.Ultrathin bismuth tungstate nanosheets as an effective photo-assisted support for electrocatalytic methanol oxidation.J Colloid Interface Sci2019;552:179-85

[12]

Barwe S,Cychy S.Electrocatalytic oxidation of 5-(hydroxymethyl)furfural using high-surface-area nickel boride.Angew Chem Int Ed Engl2018;57:11460-4

[13]

Zhang N,Tao L.Electrochemical oxidation of 5-hydroxymethylfurfural on nickel nitride/carbon nanosheets: reaction pathway determined by in situ sum frequency generation vibrational spectroscopy.Angew Chem Int Ed Engl2019;58:15895-903

[14]

Xu H,Hu W.Single-atoms Ru/NiFe layered double hydroxide electrocatalyst: efficient for oxidation of selective oxidation of 5-hydroxymethylfurfural and oxygen evolution reaction.Appl Catal B Environ2023;339:123157

[15]

Luo R,Xing L.A dynamic Ni(OH)2-NiOOH/NiFeP heterojunction enabling high-performance E-upgrading of hydroxymethylfurfural.Appl Catal B Environ2022;311:121357

[16]

Zhang B,Mu T.Hierarchical NiSx/Ni2P nanotube arrays with abundant interfaces for efficient electrocatalytic oxidation of 5-hydroxymethylfurfural.Green Chem2022;24:877-84

[17]

Bozell JJ.Technology development for the production of biobased products from biorefinery carbohydrates - the US Department of Energy’s “Top 10” revisited.Green Chem2010;12:539-54

[18]

Werpy T,Aden A. Top value added chemicals from biomass. Volume 1: results of screening for potential candidates from sugars and synthesis gas. 2004. Available from: https://www.rivertop.com/files/bioenergy/pdfs/35523.pdf. [Last accessed on 29 Aug 2024]

[19]

Wang H,Tao S.CoP-CoOOH heterojunction with modulating interfacial electronic structure: a robust biomass-upgrading electrocatalyst.Appl Catal B Environ2022;315:121588

[20]

Zhou P,Tao S.Heterogeneous-interface-enhanced adsorption of organic and hydroxyl for biomass electrooxidation.Adv Mater2022;34:e2204089

[21]

Wang H,Tao S.Nickel oxide nanoparticles with oxygen vacancies for boosting biomass-upgrading.Chem Eng J2022;444:136693

[22]

Nie J.Efficient aerobic oxidation of 5-hydroxymethylfurfural to 2,5-diformylfuran on manganese oxide catalysts.J Catal2014;316:57-66

[23]

Nie J,Liu H.Activated carbon-supported ruthenium as an efficient catalyst for selective aerobic oxidation of 5-hydroxymethylfurfural to 2,5-diformylfuran.Chinese J Catal2013;34:871-5

[24]

Wei Y,Chen Y.Crystal faces-tailored oxygen vacancy in Au/CeO2 catalysts for efficient oxidation of HMF to FDCA.ChemSusChem2022;15:e202101983

[25]

Vuyyuru KR.Oxidation of biomass derived 5-hydroxymethylfurfural using heterogeneous and electrochemical catalysis.Catal Today2012;195:144-54

[26]

Nam D,Choi K.Copper-based catalytic anodes to produce 2,5-furandicarboxylic acid, a biomass-derived alternative to terephthalic acid.ACS Catal2018;8:1197-206

[27]

Patil SKR.Formation and growth of humins via aldol addition and condensation during acid-catalyzed conversion of 5-hydroxymethylfurfural.Energy Fuels2011;25:4745-55

[28]

van Zandvoort I,Rasrendra CB.Formation, molecular structure, and morphology of humins in biomass conversion: influence of feedstock and processing conditions.ChemSusChem2013;6:1745-58

[29]

Duan J,Zhao C.Ultrathin metal-organic framework array for efficient electrocatalytic water splitting.Nat Commun2017;8:15341 PMCID:PMC5465318

[30]

Indra A,Song T.Boosting electrochemical water oxidation with metal hydroxide carbonate templated prussian blue analogues.Angew Chem Int Ed Engl2018;57:1241-5

[31]

Zhou J,Su X.Electrochemically accessing ultrathin Co (oxy)-hydroxide nanosheets and operando identifying their active phase for the oxygen evolution reaction.Energy Environ Sci2019;12:739-46

[32]

Zhou B,Zou Y.Platinum modulates redox properties and 5-hydroxymethylfurfural adsorption kinetics of Ni(OH)2 for biomass upgrading.Angew Chem Int Ed Engl2021;60:22908-14

[33]

Zhuang L,Yang Y.Ultrathin iron-cobalt oxide nanosheets with abundant oxygen vacancies for the oxygen evolution reaction.Adv Mater2017;29:1606793

[34]

Song F.Exfoliation of layered double hydroxides for enhanced oxygen evolution catalysis.Nat Commun2014;5:4477

[35]

Das TK,Çelik Y.Catalytic polymer nanocomposites for environmental remediation of wastewater.Sci Total Environ2023;901:165772

[36]

Chen D,Cao X.Highly efficient biomass upgrading by a Ni-Cu electrocatalyst featuring passivation of water oxidation activity.Angew Chem Int Ed Engl2023;62:e202309478

[37]

Pang X,Zhao H,Shi W.Efficient electrocatalytic oxidation of 5-hydroxymethylfurfural coupled with 4-nitrophenol hydrogenation in a water system.ACS Catal2022;12:1545-57

[38]

Woo J,Lee U.Collaborative electrochemical oxidation of the alcohol and aldehyde groups of 5-hydroxymethylfurfural by NiOOH and Cu(OH)2 for superior 2,5-furandicarboxylic acid production.ACS Catal2022;12:4078-91

[39]

Zhao G,Zhou P.Electrochemical oxidation of 5-hydroxymethylfurfural on CeO2-modified Co3O4 with regulated intermediate adsorption and promoted charge transfer.Adv Funct Mater2023;33:2213170

[40]

Kresse G.Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set.Phys Rev B Condens Matter1996;54:11169-86

[41]

Kresse G.Ab initio molecular-dynamics simulation of the liquid-metal-amorphous-semiconductor transition in germanium.Phys Rev B Condens Matter1994;49:14251-69

[42]

Perdew JP,Ernzerhof M.Generalized gradient approximation made simple [Phys. Rev. Lett. 77, 3865 (1996)].Phys Rev Lett1997;78:1396

[43]

Liechtenstein AI,Zaanen J.Density-functional theory and strong interactions: orbital ordering in Mott-Hubbard insulators.Phys Rev B Condens Matter1995;52:R5467-70

[44]

Jamal M,Sharif A.Effects of transition metal (Fe, Co & Ni) doping on structural, electronic and optical properties of CuO: DFT + U study.Chem Phys2021;545:111160

[45]

Heinz U,Chaudhuri AK.Dissipative hydrodynamics for viscous relativistic fluids.Phys Rev C2006;73:034904

[46]

Wang H,Liu W.d-Electron tuned CoMoP for enhance 5-hydroxymethylfurfural oxidation and HER.Appl Catal B Environ2024;340:123249

[47]

Wu T,Wang X.Surface-confined self-reconstruction to sulfate-terminated ultrathin layers on NiMo3S4 toward biomass molecule electro-oxidation.Appl Catal B Environ2023;323:122126

[48]

Cai X,Luo X.Understanding the evolution of cobalt-based metal-organic frameworks in electrocatalysis for the oxygen evolution reaction.ChemSusChem2021;14:3163-73

[49]

Hu L,Liu R,Balogun MS.Co-based MOF-derived Co/CoN/Co2P ternary composite embedded in N- and P-doped carbon as bifunctional nanocatalysts for efficient overall water splitting.Int J Hydrogen Energ2019;44:11402-10

[50]

Lu Y,Dong CL.Tailoring competitive adsorption sites by oxygen-vacancy on cobalt oxides to enhance the electrooxidation of biomass.Adv Mater2022;34:e2107185

[51]

Li S,Wang Y.Doped Mn enhanced NiS electrooxidation performance of HMF into FDCA at industrial-level current density.Adv Funct Mater2023;33:2214488

[52]

Ge R,Li Z.Selective electrooxidation of biomass-derived alcohols to aldehydes in a neutral medium: promoted water dissociation over a nickel-oxide-supported ruthenium single-atom catalyst.Angew Chem Int Ed Engl2022;61:e202200211

[53]

Sun Y,Qi Y,Wang C.Efficient electrooxidation of 5-hydroxymethylfurfural using co-doped Ni3S2 catalyst: promising for H2 production under industrial-level current density.Adv Sci2022;9:e2200957 PMCID:PMC9189636

[54]

Lu L,Wang H,Wu J.Tailoring the electron structure and substrate adsorption energy of Ni hydroxide via Co doping to enhance the electrooxidation of biomass-derived chemicals.J Catal2023;424:1-8

[55]

Moysiadou A,Hsu CS,Hu X.Mechanism of oxygen evolution catalyzed by cobalt oxyhydroxide: cobalt superoxide species as a key intermediate and dioxygen release as a rate-determining step.J Am Chem Soc2020;142:11901-14

[56]

Chen Z,Yang X.Reversible structural evolution of NiCoOxHy during the oxygen evolution reaction and identification of the catalytically active phase.ACS Catal2018;8:1238-47

[57]

Li S,Yao Z.Biomass valorization via paired electrosynthesis over vanadium nitride-based electrocatalysts.Adv Funct Mater2019;29:1904780

[58]

Liu J.Laser promoting oxygen vacancies generation in alloy via Mo for HMF electrochemical oxidation.Adv Sci2023;10:e2302641 PMCID:PMC10520653

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