Mechanism of Particle-Mediated Inhibition of Demetalation for Single-Atom Catalytic Sites in Acidic Electrochemical Environments

Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic sites (SACS) in proton exchange membrane-based energy technologies. One promising approach to inhibit SACS demetalation is the use of metallic p...

Full description

Saved in:
Bibliographic Details
Published inChemRxiv
Main Authors Wang, Yu-Cheng, Gao, Xiao-bing, Xu, Wei Cheng, Huang, Huan, Zhao, Kuang-min, Ye, Hong, Zhou, Zhiyou, Zheng, Nan-Feng, Sun, Shigang
Format Paper
LanguageEnglish
Edition3
Subjects
Online AccessGet full text

Cover

Loading…
Abstract Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic sites (SACS) in proton exchange membrane-based energy technologies. One promising approach to inhibit SACS demetalation is the use of metallic particles to interact with SACS. However, the mechanism underlying this stabilization remains unclear. In this study, we propose and validate a unified mechanism by which metal particles can inhibit the demetalation of Fe SACS. Metal particles act as electron donors, decreasing the Fe valence by increasing the electron density at the FeN4 position, thereby strengthening the Fe-N bond, and inhibiting electrochemical Fe dissolution. Different types, forms, and contents of metal particles increase the Fe-N bond strength to varying extents. A linear correlation between Fe valence, Fe-N bond strength, and electrochemical Fe dissolution amount supports this mechanism. Our screening of a particle-assisted Fe SAC led to a 78% reduction in Fe dissolution, enabling continuous operation for up to 430 hours in a fuel cell. These findings contribute to the development of stable SACS for energy applications.
AbstractList Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic sites (SACS) in proton exchange membrane-based energy technologies. One promising approach to inhibit SACS demetalation is the use of metallic particles to interact with SACS. However, the mechanism underlying this stabilization remains unclear. In this study, we propose and validate a unified mechanism by which metal particles can inhibit the demetalation of Fe SACS. Metal particles act as electron donors, decreasing the Fe valence by increasing the electron density at the FeN4 position, thereby strengthening the Fe-N bond, and inhibiting electrochemical Fe dissolution. Different types, forms, and contents of metal particles increase the Fe-N bond strength to varying extents. A linear correlation between Fe valence, Fe-N bond strength, and electrochemical Fe dissolution amount supports this mechanism. Our screening of a particle-assisted Fe SAC led to a 78% reduction in Fe dissolution, enabling continuous operation for up to 430 hours in a fuel cell. These findings contribute to the development of stable SACS for energy applications.
Author Zheng, Nan-Feng
Huang, Huan
Wang, Yu-Cheng
Ye, Hong
Gao, Xiao-bing
Xu, Wei Cheng
Zhou, Zhiyou
Zhao, Kuang-min
Sun, Shigang
Author_xml – sequence: 1
  givenname: Yu-Cheng
  orcidid: 0000-0002-3356-3403
  surname: Wang
  fullname: Wang, Yu-Cheng
  organization: Xiamen University
– sequence: 2
  givenname: Xiao-bing
  surname: Gao
  fullname: Gao, Xiao-bing
  organization: Xiamen University
– sequence: 3
  givenname: Wei Cheng
  surname: Xu
  fullname: Xu, Wei Cheng
  organization: Xiamen University
– sequence: 4
  givenname: Huan
  surname: Huang
  fullname: Huang, Huan
  organization: Institute of High Energy Physics
– sequence: 5
  givenname: Kuang-min
  surname: Zhao
  fullname: Zhao, Kuang-min
  organization: Xiamen University
– sequence: 6
  givenname: Hong
  surname: Ye
  fullname: Ye, Hong
  organization: Innovation laboratory for science and technologies of energy materials of Fujian Province
– sequence: 7
  givenname: Zhiyou
  surname: Zhou
  fullname: Zhou, Zhiyou
  organization: Xiamen University
– sequence: 8
  givenname: Nan-Feng
  surname: Zheng
  fullname: Zheng, Nan-Feng
  organization: Xiamen University
– sequence: 9
  givenname: Shigang
  surname: Sun
  fullname: Sun, Shigang
  organization: Xiamen University
BookMark eNo1UMtOwzAQtBBIlNJvwD9gcGwnjY9VKVCpFUj0Xq3tdWuU2JBYFb3x6aQ8Ljuamd3Raq7IeUwRCbkp-K2olFR3do9t9xkOTHAhmfUfbscO8oyMRDmVTAgtL8mk798456IsikKVI_K1RruHGPqWJk9foMvBNsjW6AJkdHQZ98GEHFI8-ffYYoYGfrhPHX0NcTesz3Jq6RwG6zjcD2rGnoZIZza4gS8atLlLp_-ChYYu4iF0KbYYc39NLjw0PU7-cEw2D4vN_Imtnh-X89mKWc0lU6i8LwVIrqEAYaRRlZYosbLeO6N1VXMsCo2udEIJqCuvrdEwdVxBDUaOCf-N_S9p-96FFrrjtlJqKmunURljTsNLOaTU8hv2CmxP
ContentType Paper
DBID CQEMM
DOI 10.26434/chemrxiv-2023-cfqdg-v3
DatabaseName ChemRxiv
DatabaseTitleList
Database_xml – sequence: 1
  dbid: CQEMM
  name: ChemRxiv
  url: https://chemrxiv.org/engage/chemrxiv/public-dashboard
  sourceTypes: Open Access Repository
DeliveryMethod fulltext_linktorsrc
Discipline Chemistry
EISSN 2573-2293
Edition 3
ExternalDocumentID 644738d9e4bbbe4bbf33d5d8
GroupedDBID AFKRA
ALMA_UNASSIGNED_HOLDINGS
BENPR
CCPQU
CQEMM
PHGZT
PIMPY
ID FETCH-LOGICAL-c903-4e4ff52a309a1a2b3b4693e3e6cffdb99680e119ed5d242a86f9cb9a7d04a8ab3
IEDL.DBID CQEMM
IngestDate Fri Mar 14 12:02:39 EDT 2025
IsDoiOpenAccess true
IsOpenAccess true
IsPeerReviewed false
IsScholarly false
Keywords fuel cell
single-atom catalysis
demetalation
stability
Language English
License https://creativecommons.org/licenses/by-nc-nd/4.0
LinkModel DirectLink
MergedId FETCHMERGED-LOGICAL-c903-4e4ff52a309a1a2b3b4693e3e6cffdb99680e119ed5d242a86f9cb9a7d04a8ab3
ORCID 0000-0002-3356-3403
OpenAccessLink https://chemrxiv.org/engage/chemrxiv/article-details/644738d9e4bbbe4bbf33d5d8
ParticipantIDs chemrxiv_primary_644738d9e4bbbe4bbf33d5d8
PublicationTitle ChemRxiv
SSID ssj0002511145
Score 1.2922068
SecondaryResourceType preprint
Snippet Demetalation, caused by the electrochemical dissolution of metal atoms, poses a significant challenge to the practical application of single-atom catalytic...
SourceID chemrxiv
SourceType Open Access Repository
SubjectTerms Catalysis
Chemistry
Electrocatalysis
Energy
Fuel Cells
Physical Chemistry
Title Mechanism of Particle-Mediated Inhibition of Demetalation for Single-Atom Catalytic Sites in Acidic Electrochemical Environments
URI https://chemrxiv.org/engage/chemrxiv/article-details/644738d9e4bbbe4bbf33d5d8
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwlV1LTwIxEG4QDh59Ro2aHrx4aCi0XbZHgkvQZA1GTLiRdjvFPbAgINGbP93ZB4SLBy-b9LFNt9NmvunOzEfInQusAi044xock8p4ZgKVp8fjQYL7ua2KlPnxczB4k09jNa6ReBsLgzOdLb_STfETH7IpHqpdXbNaTFZ6V66aqMs7InQapLU2f3ghnHLhAWngNpOyThq9lyiOd5cuOZ5uSVX6eSEUEHI3OMt5xFniP9yUbQoGraphT930j0hjaBawPCY1yE7IYW9LynZKfmLIQ3XT1YzOPR1upxoXhBvg6GP2ntrCCytvf4AZfkPp7UYRndJXVFTYvbuez2gvv7j5xvexFvEmTTPaTVKH5aikxkmqXAI02guGOyOjfjTqDVhFosASzQWTIL1XbSO4Ni3TtsKiPSxAQJB47yxaOyGHVgsFpRxqaxMGXidWm47j0oTGinNSz-YZXBAqA8N9GyUJxqLVCRqHdVwpk4BGEGcvyf12zSaLMlXG5C8JXf2j7zWpr5efcIPKf21vK5H-AtIwtfg
linkProvider ChemRxiv
linkToHtml http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwlV1LTwIxEG4QDh59Ro2PHrx4aCi0XbZHghBQlmDEhBtpt1PdA4siEr350519QLx48LJJH9t0O23mm-7MfIRcu8Aq0IIzrsExqYxnJlBZejwexLifmypPmR-Ngv6TvJuqaYVEm1gYnOl8-Zms85_4kD7jodrW1cvFZIV35XsddXlLhE6DtNZmDy-EUy7cITXcZjKsklrnoRtF20uXDE83pCr8vBAKCLkdnGU84iz2b-6ZrXMGrbLhl7rp7ZHa2LzCcp9UID0gu50NKdsh-Y4gC9VN3ud04el4M9UoJ9wARwfpS2JzL6ys_Rbm-A2FtxtFdEofUVFh9_ZqMaed7OLmC9_HWsSbNElpO04clrsFNU5c5hKg3V_BcEdk0utOOn1WkiiwWHPBJEjvVdMIrk3DNK2waA8LEBDE3juL1k7IodFAQSmH2tqEgdex1abluDShseKYVNNFCieEysBw30RJgrFodYLGYR1XysSgEcTZU3KzWbPZa5EqY_aXhM7-0feK7PYn0XA2HIzuz0l1tfyACwQCK3tZivcHdEO45g
linkToPdf http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwlV1Lj9MwELaWrQRHngLEwwcuHIa4tZ2Nj6tuq10gqyIWaW-VHY-XHJKGtqzgxk_mJzB2k6ocOHCJlIwd5bPHyjdjzwxjb3zuNBopQBj0oLQNYHMd0-OJvCJ9nuiUMr-8zM-_qPfX-vqI_R5iYehLm_WP-jZt4mN7Q4sqs109OJv28oyoJW432WrdxSzbydGdipdl9IM_kYU3qJxz8RKk9NoX2VBpKmswBtXWmwZWAbp-hiBFahDLg7r9Wrt0XirKPTZINDgNExCPhGjCU3MyiRtILpaf1B_iVu-GuoKtak_3fRGbqo_6h8OwtXedD3fYiFaCInNxNP00K8u9XyhS_rHSu6NoxFak2mOGWOocqvDN38BtKvLVCw7-iPP7bLSwHa4fsCNsH7J706Fu3CP2qxyA81XgiwF42QPnF3vgUX52AJwTcP55B_yUgPPpAJyeEnBet_w0Aeezv4Hz2QHwx-xqPruankNf5wEqIyQoVCHoiZXC2LGdOOnIZJcoMa9C8I4MskLgeEy6pD0RClvkwVTO2BMvlC2sk0_Ycbtq8SnjKrciTEjZ0DoyjNHQa73Q2lZoiGe6Z-ztMGbLbpfNY_kvfXn-H21fs7uLs_ny48XlhxfseLv-ji-Jqmzdq352_wD_OPf3
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=Mechanism+of+Particle-Mediated+Inhibition+of+Demetalation+for+Single-Atom+Catalytic+Sites+in+Acidic+Electrochemical+Environments&rft.jtitle=ChemRxiv&rft.au=Wang%2C+Yu-Cheng&rft.au=Gao%2C+Xiao-bing&rft.au=Xu%2C+Wei+Cheng&rft.au=Huang%2C+Huan&rft.eissn=2573-2293&rft_id=info:doi/10.26434%2Fchemrxiv-2023-cfqdg-v3&rft.externalDocID=644738d9e4bbbe4bbf33d5d8
thumbnail_s http://utb.summon.serialssolutions.com/2.0.0/image/custom?url=https%3A%2F%2Fchemrxiv.org%2Fengage%2Fapi-gateway%2Fchemrxiv%2Fassets%2Forp%2Fresource%2Fitem%2F644738d9e4bbbe4bbf33d5d8%2FsmallThumb%2Fmechanism-of-particle-mediated-inhibition-of-demetalation-for-single-atom-catalytic-sites-in-acidic-electrochemical-environments.jpg