Electro-oxidizingglycerol(GlOH)insteadofwater at the anode of an electrolyzer can lower the thermodynamic thresholdpotential by∼1Vand simultaneously produce high value-addedproducts andgreenH2 at the cathode.Herein, we reporttheuseofAgnanoparticleswhosesurfacesareenrichedwith low loadings of Pt (0.3−6.9 mol%) for the GlOH electro oxidation reaction (GEOR). The optimized Pt(0.5%)Ag/C catalyst delivers∼50%of thegeometric areanormalized-activity of commercial Pt/CforGEORin0.5MNaOH+1MGlOH, whileusingabout140times lessPt.Thisremarkableperformance originatesfromthesynergybetweenPtandAg:Ptsitesadsorband initiate glycerol oxidation, while Ag sites provide oxygenated species that sustainthereactionandsteer theproduct selectivity. Potential-dependent selectivitywasobserved: below0.9VvsRHE, glycerateand lactatedominate,whereas above0.9V,C−C scissionyieldsglycolateandformate,withrelativelylowcompleteoxidationtocarbonate.Device-level tests inananionexchange membrane(AEM)electrolyzercorroboratehalf-cell trends.AgPt/CsustainscurrentdensitiescomparabletoPt/Cbutfavorsearlier formationof tartronateandhigherglycerateproduction, confirmingthat thebimetallicinterfacemodulates thereactionpathways. Bothdevicesalsoshowlactate, i.e., theproductcomingfromacombinationofanelectrochemical andachemical transformation. Thecombinationof (i)drastically reducednoble-metal content, (ii)highactivityatpotentialswell belowtheoxygen-evolution region, (iii)tunableco-productionofC3andC2oxygenates, and(iv)cooperativePt−Agsynergy,positionsPt-decoratedAgasa cost-effectiveanodeplatformforpairedGlOHelectro-reformingandgreenH2generation.Besides,weshowedherethatthecatalysts arepromisingforothersmallorganicmoleculesandthattheresultsinthree-electrodeelectrochemicalcells,despitesomelimitations, helppredictactivityandselectivitytrends for realdevices.

Lima, C.C., Quispe, A.L.T., Yukuhiro, V.Y., Pires, C.T.G.V.M.T., Silva, A.B.S., Landers, R., et al. (2025). Linking Fundamentals and Devices: Evaluating Low Pt Ag Nanocatalysts in Three Electrode Systems and Operating Glycerol AEM Electrolyzers. ACS ELECTROCHEMISTRY, 1(12), 2811-2822 [10.1021/acselectrochem.5c00366].

Linking Fundamentals and Devices: Evaluating Low Pt Ag Nanocatalysts in Three Electrode Systems and Operating Glycerol AEM Electrolyzers

Pires, C T G V M T;
2025

Abstract

Electro-oxidizingglycerol(GlOH)insteadofwater at the anode of an electrolyzer can lower the thermodynamic thresholdpotential by∼1Vand simultaneously produce high value-addedproducts andgreenH2 at the cathode.Herein, we reporttheuseofAgnanoparticleswhosesurfacesareenrichedwith low loadings of Pt (0.3−6.9 mol%) for the GlOH electro oxidation reaction (GEOR). The optimized Pt(0.5%)Ag/C catalyst delivers∼50%of thegeometric areanormalized-activity of commercial Pt/CforGEORin0.5MNaOH+1MGlOH, whileusingabout140times lessPt.Thisremarkableperformance originatesfromthesynergybetweenPtandAg:Ptsitesadsorband initiate glycerol oxidation, while Ag sites provide oxygenated species that sustainthereactionandsteer theproduct selectivity. Potential-dependent selectivitywasobserved: below0.9VvsRHE, glycerateand lactatedominate,whereas above0.9V,C−C scissionyieldsglycolateandformate,withrelativelylowcompleteoxidationtocarbonate.Device-level tests inananionexchange membrane(AEM)electrolyzercorroboratehalf-cell trends.AgPt/CsustainscurrentdensitiescomparabletoPt/Cbutfavorsearlier formationof tartronateandhigherglycerateproduction, confirmingthat thebimetallicinterfacemodulates thereactionpathways. Bothdevicesalsoshowlactate, i.e., theproductcomingfromacombinationofanelectrochemical andachemical transformation. Thecombinationof (i)drastically reducednoble-metal content, (ii)highactivityatpotentialswell belowtheoxygen-evolution region, (iii)tunableco-productionofC3andC2oxygenates, and(iv)cooperativePt−Agsynergy,positionsPt-decoratedAgasa cost-effectiveanodeplatformforpairedGlOHelectro-reformingandgreenH2generation.Besides,weshowedherethatthecatalysts arepromisingforothersmallorganicmoleculesandthattheresultsinthree-electrodeelectrochemicalcells,despitesomelimitations, helppredictactivityandselectivitytrends for realdevices.
2025
Lima, C.C., Quispe, A.L.T., Yukuhiro, V.Y., Pires, C.T.G.V.M.T., Silva, A.B.S., Landers, R., et al. (2025). Linking Fundamentals and Devices: Evaluating Low Pt Ag Nanocatalysts in Three Electrode Systems and Operating Glycerol AEM Electrolyzers. ACS ELECTROCHEMISTRY, 1(12), 2811-2822 [10.1021/acselectrochem.5c00366].
Lima, C C; Quispe, A L T; Yukuhiro, V Y; Pires, C T G V M T; Silva, A B S; Landers, R; De Figueiredo, P B S; De Lima, R B; Arruda, M A Z; Santos, K T;...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1035798
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