This paper aims to elucidate the origin and the different catalytic properties toward the oxygen reduction reaction in the acidic electrolyte of Fe-octaethylporphyrin (FeOEt) and Pt-octaethylporphyrin (PtOEt) supported on Au(111) electrodes. The electrocatalytic process in the two systems is monitored by using in situ scanning tunneling microscopy, allowing observation of the different redox states of the metal center and the different coordination of oxygen, which manifests as a net difference in topography. The coordination of oxygen at the two metal centers was confirmed by computational models, which observed a much stronger interaction between Fe-O2 (1.75 Å) than in Pt-O2 (3 Å). Cyclic voltammetry at still and rotating ring disc electrodes evidenced that at FeOEP, the ORR occurred according to redox-catalysis-like, Eonset (ORR) = 0.5 V vs reversible hydrogen electrode (RHE), where the variation of the metal center redox state mediates the reduction of the oxygen molecule, recovering its original oxidation state by reduction at the electrode. Conversely, PtOEP, which does not possess a redox behavior, results in worse performances, Eonset (ORR) = 0.275 V vs RHE, but certain catalysis is still observed. A tetraelectronic reduction process to H2O was observed at both metal centers, and the mechanism was fully interpreted by computational analysis.
Single-Site Catalysts for the Oxygen Reduction Reaction: Why Iron Is Better than Platinum
	
	
	
		
		
		
		
		
	
	
	
	
	
	
	
	
		
		
		
		
		
			
			
			
		
		
		
		
			
			
				
				
					
					
					
					
						
							
						
						
					
				
				
				
				
				
				
				
				
				
				
				
			
			
		
			
			
				
				
					
					
					
					
						
						
							
							
						
					
				
				
				
				
				
				
				
				
				
				
				
			
			
		
			
			
				
				
					
					
					
					
						
							
						
						
					
				
				
				
				
				
				
				
				
				
				
				
			
			
		
			
			
				
				
					
					
					
					
						
							
						
						
					
				
				
				
				
				
				
				
				
				
				
				
			
			
		
			
			
				
				
					
					
					
					
						
						
							
							
						
					
				
				
				
				
				
				
				
				
				
				
				
			
			
		
			
			
				
				
					
					
					
					
						
							
						
						
					
				
				
				
				
				
				
				
				
				
				
				
			
			
		
		
		
		
	
Facchin A.Formal Analysis
;Zerbetto M.Membro del Collaboration Group
;Cazzadori F.Membro del Collaboration Group
;Durante C.
						
						
						
							Project Administration
	
		
		
	
			2024
Abstract
This paper aims to elucidate the origin and the different catalytic properties toward the oxygen reduction reaction in the acidic electrolyte of Fe-octaethylporphyrin (FeOEt) and Pt-octaethylporphyrin (PtOEt) supported on Au(111) electrodes. The electrocatalytic process in the two systems is monitored by using in situ scanning tunneling microscopy, allowing observation of the different redox states of the metal center and the different coordination of oxygen, which manifests as a net difference in topography. The coordination of oxygen at the two metal centers was confirmed by computational models, which observed a much stronger interaction between Fe-O2 (1.75 Å) than in Pt-O2 (3 Å). Cyclic voltammetry at still and rotating ring disc electrodes evidenced that at FeOEP, the ORR occurred according to redox-catalysis-like, Eonset (ORR) = 0.5 V vs reversible hydrogen electrode (RHE), where the variation of the metal center redox state mediates the reduction of the oxygen molecule, recovering its original oxidation state by reduction at the electrode. Conversely, PtOEP, which does not possess a redox behavior, results in worse performances, Eonset (ORR) = 0.275 V vs RHE, but certain catalysis is still observed. A tetraelectronic reduction process to H2O was observed at both metal centers, and the mechanism was fully interpreted by computational analysis.| File | Dimensione | Formato | |
|---|---|---|---|
| 
									
										
										
										
										
											
												
												
												    
												
											
										
									
									
										
										
											facchin-et-al-2024-single-site-catalysts-for-the-oxygen-reduction-reaction-why-iron-is-better-than-platinum.pdf
										
																				
									
										
											 Accesso riservato 
											Tipologia:
											Published (Publisher's Version of Record)
										 
									
									
									
									
										
											Licenza:
											
											
												Accesso privato - non pubblico
												
												
												
											
										 
									
									
										Dimensione
										3.2 MB
									 
									
										Formato
										Adobe PDF
									 
										
										
								 | 
								3.2 MB | Adobe PDF | Visualizza/Apri Richiedi una copia | 
Pubblicazioni consigliate
I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.




