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P-block single-metal-site tin/nitrogen-doped carbon fuel cell cathode catalyst for oxygen reduction reaction:[Inkl. Correction]

Authors :
Luo, Fang
Roy, Aaron
Silvioli, Luca
Cullen, David A.
Zitolo, Andrea
Sougrati, Moulay Tahar
Oguz, Ismail Can
Mineva, Tzonka
Teschner, Detre
Wagner, Stephan
Wen, Ju
Dionigi, Fabio
Kramm, Ulrike I.
Rossmeisl, Jan
Jaouen, Frédéric
Strasser, Peter
Luo, Fang
Roy, Aaron
Silvioli, Luca
Cullen, David A.
Zitolo, Andrea
Sougrati, Moulay Tahar
Oguz, Ismail Can
Mineva, Tzonka
Teschner, Detre
Wagner, Stephan
Wen, Ju
Dionigi, Fabio
Kramm, Ulrike I.
Rossmeisl, Jan
Jaouen, Frédéric
Strasser, Peter
Source :
Luo , F , Roy , A , Silvioli , L , Cullen , D A , Zitolo , A , Sougrati , M T , Oguz , I C , Mineva , T , Teschner , D , Wagner , S , Wen , J , Dionigi , F , Kramm , U I , Rossmeisl , J , Jaouen , F & Strasser , P 2020 , ' P-block single-metal-site tin/nitrogen-doped carbon fuel cell cathode catalyst for oxygen reduction reaction : [Inkl. Correction] ' , Nature Materials .
Publication Year :
2020

Abstract

This contribution reports the discovery and analysis of a p-block Sn-based catalyst for the electroreduction of molecular oxygen in acidic conditions at fuel cell cathodes; the catalyst is free of platinum-group metals and contains single-metal-atom actives sites coordinated by nitrogen. The prepared SnNC catalysts meet and exceed state-of-the-art FeNC catalysts in terms of intrinsic catalytic turn-over frequency and hydrogen–air fuel cell power density. The SnNC-NH3 catalysts displayed a 40–50% higher current density than FeNC-NH3 at cell voltages below 0.7 V. Additional benefits include a highly favourable selectivity for the four-electron reduction pathway and a Fenton-inactive character of Sn. A range of analytical techniques combined with density functional theory calculations indicate that stannic Sn(iv)Nx single-metal sites with moderate oxygen chemisorption properties and low pyridinic N coordination numbers act as catalytically active moieties. The superior proton-exchange membrane fuel cell performance of SnNC cathode catalysts under realistic, hydrogen–air fuel cell conditions, particularly after NH3 activation treatment, makes them a promising alternative to today’s state-of-the-art Fe-based catalysts.

Details

Database :
OAIster
Journal :
Luo , F , Roy , A , Silvioli , L , Cullen , D A , Zitolo , A , Sougrati , M T , Oguz , I C , Mineva , T , Teschner , D , Wagner , S , Wen , J , Dionigi , F , Kramm , U I , Rossmeisl , J , Jaouen , F & Strasser , P 2020 , ' P-block single-metal-site tin/nitrogen-doped carbon fuel cell cathode catalyst for oxygen reduction reaction : [Inkl. Correction] ' , Nature Materials .
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1322746529
Document Type :
Electronic Resource