Cargando…

Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells

[Image: see text] Transition-metal- and nitrogen-codoped carbide-derived carbon/carbon nanotube composites (M-N-CDC/CNT) have been prepared, characterized, and used as cathode catalysts in anion-exchange membrane fuel cells (AEMFCs). As transition metals, cobalt, iron, and a combination of both have...

Descripción completa

Detalles Bibliográficos
Autores principales: Lilloja, Jaana, Kibena-Põldsepp, Elo, Sarapuu, Ave, Douglin, John C., Käärik, Maike, Kozlova, Jekaterina, Paiste, Päärn, Kikas, Arvo, Aruväli, Jaan, Leis, Jaan, Sammelselg, Väino, Dekel, Dario R., Tammeveski, Kaido
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8744415/
https://www.ncbi.nlm.nih.gov/pubmed/35028188
http://dx.doi.org/10.1021/acscatal.0c03511
_version_ 1784630114040938496
author Lilloja, Jaana
Kibena-Põldsepp, Elo
Sarapuu, Ave
Douglin, John C.
Käärik, Maike
Kozlova, Jekaterina
Paiste, Päärn
Kikas, Arvo
Aruväli, Jaan
Leis, Jaan
Sammelselg, Väino
Dekel, Dario R.
Tammeveski, Kaido
author_facet Lilloja, Jaana
Kibena-Põldsepp, Elo
Sarapuu, Ave
Douglin, John C.
Käärik, Maike
Kozlova, Jekaterina
Paiste, Päärn
Kikas, Arvo
Aruväli, Jaan
Leis, Jaan
Sammelselg, Väino
Dekel, Dario R.
Tammeveski, Kaido
author_sort Lilloja, Jaana
collection PubMed
description [Image: see text] Transition-metal- and nitrogen-codoped carbide-derived carbon/carbon nanotube composites (M-N-CDC/CNT) have been prepared, characterized, and used as cathode catalysts in anion-exchange membrane fuel cells (AEMFCs). As transition metals, cobalt, iron, and a combination of both have been investigated. Metal and nitrogen are doped through a simple high-temperature pyrolysis technique with 1,10-phenanthroline as the N precursor. The physicochemical characterization shows the success of metal and nitrogen doping as well as very similar morphologies and textural properties of all three composite materials. The initial assessment of the oxygen reduction reaction (ORR) activity, employing the rotating ring–disk electrode method, indicates that the M-N-CDC/CNT catalysts exhibit a very good electrocatalytic performance in alkaline media. We find that the formation of HO(2)(–) species in the ORR catalysts depends on the specific metal composition (Co, Fe, or CoFe). All three materials show excellent stability with a negligible decline in their performance after 10000 consecutive potential cycles. The very good performance of the M-N-CDC/CNT catalyst materials is attributed to the presence of M-N(x) and pyridinic-N moieties as well as both micro- and mesoporous structures. Finally, the catalysts exhibit excellent performance in in situ tests in H(2)/O(2) AEMFCs, with the CoFe-N-CDC/CNT reaching a current density close to 500 mA cm(–2) at 0.75 V and a peak power density (P(max)) exceeding 1 W cm(–2). Additional tests show that P(max) reaches 0.8 W cm(–2) in an H(2)/CO(2)-free air system and that the CoFe-N-CDC/CNT material exhibits good stability under both AEMFC operating conditions.
format Online
Article
Text
id pubmed-8744415
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-87444152022-01-11 Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells Lilloja, Jaana Kibena-Põldsepp, Elo Sarapuu, Ave Douglin, John C. Käärik, Maike Kozlova, Jekaterina Paiste, Päärn Kikas, Arvo Aruväli, Jaan Leis, Jaan Sammelselg, Väino Dekel, Dario R. Tammeveski, Kaido ACS Catal [Image: see text] Transition-metal- and nitrogen-codoped carbide-derived carbon/carbon nanotube composites (M-N-CDC/CNT) have been prepared, characterized, and used as cathode catalysts in anion-exchange membrane fuel cells (AEMFCs). As transition metals, cobalt, iron, and a combination of both have been investigated. Metal and nitrogen are doped through a simple high-temperature pyrolysis technique with 1,10-phenanthroline as the N precursor. The physicochemical characterization shows the success of metal and nitrogen doping as well as very similar morphologies and textural properties of all three composite materials. The initial assessment of the oxygen reduction reaction (ORR) activity, employing the rotating ring–disk electrode method, indicates that the M-N-CDC/CNT catalysts exhibit a very good electrocatalytic performance in alkaline media. We find that the formation of HO(2)(–) species in the ORR catalysts depends on the specific metal composition (Co, Fe, or CoFe). All three materials show excellent stability with a negligible decline in their performance after 10000 consecutive potential cycles. The very good performance of the M-N-CDC/CNT catalyst materials is attributed to the presence of M-N(x) and pyridinic-N moieties as well as both micro- and mesoporous structures. Finally, the catalysts exhibit excellent performance in in situ tests in H(2)/O(2) AEMFCs, with the CoFe-N-CDC/CNT reaching a current density close to 500 mA cm(–2) at 0.75 V and a peak power density (P(max)) exceeding 1 W cm(–2). Additional tests show that P(max) reaches 0.8 W cm(–2) in an H(2)/CO(2)-free air system and that the CoFe-N-CDC/CNT material exhibits good stability under both AEMFC operating conditions. American Chemical Society 2021-01-28 2021-02-19 /pmc/articles/PMC8744415/ /pubmed/35028188 http://dx.doi.org/10.1021/acscatal.0c03511 Text en © 2021 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Lilloja, Jaana
Kibena-Põldsepp, Elo
Sarapuu, Ave
Douglin, John C.
Käärik, Maike
Kozlova, Jekaterina
Paiste, Päärn
Kikas, Arvo
Aruväli, Jaan
Leis, Jaan
Sammelselg, Väino
Dekel, Dario R.
Tammeveski, Kaido
Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells
title Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells
title_full Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells
title_fullStr Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells
title_full_unstemmed Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells
title_short Transition-Metal- and Nitrogen-Doped Carbide-Derived Carbon/Carbon Nanotube Composites as Cathode Catalysts for Anion-Exchange Membrane Fuel Cells
title_sort transition-metal- and nitrogen-doped carbide-derived carbon/carbon nanotube composites as cathode catalysts for anion-exchange membrane fuel cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8744415/
https://www.ncbi.nlm.nih.gov/pubmed/35028188
http://dx.doi.org/10.1021/acscatal.0c03511
work_keys_str_mv AT lillojajaana transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT kibenapoldseppelo transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT sarapuuave transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT douglinjohnc transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT kaarikmaike transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT kozlovajekaterina transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT paistepaarn transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT kikasarvo transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT aruvalijaan transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT leisjaan transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT sammelselgvaino transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT dekeldarior transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells
AT tammeveskikaido transitionmetalandnitrogendopedcarbidederivedcarboncarbonnanotubecompositesascathodecatalystsforanionexchangemembranefuelcells