Unconventional structural and morphological transitions of nanosheets, nanoflakes and nanorods of AuNP@MnO2

Two-dimensional (2-D) layered inorganic materials with ultra-high surface area and mechanical strength have shown impressive photo-/electro-catalytic activities. We herein report a facile synthetic strategy to grow monodispersed 2-D MnO2 nanosheet on an individual gold nanoparticle (AuNP@MnO2 nanosh...

Full description

Saved in:
Bibliographic Details
Published inJournal of materials chemistry. A, Materials for energy and sustainability Vol. 4; no. 17; p. 6447
Main Authors Liu, Ben, Mosa, Islam M., Song, Wenqiao, Zheng, Haoquan, Kuo, Chung-Hao, Rusling, James F., Suib, Steven L., He, Jie
Format Journal Article
LanguageEnglish
Published 2016
Online AccessGet full text

Cover

Loading…
Abstract Two-dimensional (2-D) layered inorganic materials with ultra-high surface area and mechanical strength have shown impressive photo-/electro-catalytic activities. We herein report a facile synthetic strategy to grow monodispersed 2-D MnO2 nanosheet on an individual gold nanoparticle (AuNP@MnO2 nanosheet), and demonstrate that the strongly interacted AuNP and MnO2 nanosheet could greatly improve the electrocatalytic activity of the MnOx family for electrocatalytic oxygen reduction reactions (ORRs). AuNP@MnO2 nanosheets were prepared using a hydrothermal reduction of KMnO4 by citrate ligands capped on AuNPs. Because of the metastability of the layered MnO2 nanosheets, we observed unconventional structural and morphological transitions of amorphous MnO2 nanosheets to delta-MnO2 nanoflakes, and eventually to alpha-MnO2 nanorods under hydrothermal conditions. The layered MnO2 nanosheets underwent a structural expansion to nanoflakes before the curling and re-folding of layered MnO2 nanosheets occurred. The intermediate states and structural transitions via a layer compression, for the first time, were experimentally recorded at a single-NP scale using electron microscopy. Moreover, we found the electrocatalytic activity of AuNP@MnO2 nanosheets was enhanced roughly 30-40 times, compared to that of pure MnO2 nanosheets and AuNPs. The strong interaction of metal-oxide interfaces (MnO2 nanosheets and AuNPs) was likely responsible for the improved electrocatalytic activity. This interaction of MnO2 and AuNPs was weakened in the course of hydrothermal treatment where partially positively charged Au+ was reduced at elevated temperatures, accompanying with the decrease of ORR activity. This insight into the effect of topological nanostructures and metal-oxide interactions on the electrocatalytic performance of the MnOx family is believed to illustrate an alternative pathway to develop new efficient electrocatalysts.
AbstractList Two-dimensional (2-D) layered inorganic materials with ultra-high surface area and mechanical strength have shown impressive photo-/electro-catalytic activities. We herein report a facile synthetic strategy to grow monodispersed 2-D MnO2 nanosheet on an individual gold nanoparticle (AuNP@MnO2 nanosheet), and demonstrate that the strongly interacted AuNP and MnO2 nanosheet could greatly improve the electrocatalytic activity of the MnOx family for electrocatalytic oxygen reduction reactions (ORRs). AuNP@MnO2 nanosheets were prepared using a hydrothermal reduction of KMnO4 by citrate ligands capped on AuNPs. Because of the metastability of the layered MnO2 nanosheets, we observed unconventional structural and morphological transitions of amorphous MnO2 nanosheets to delta-MnO2 nanoflakes, and eventually to alpha-MnO2 nanorods under hydrothermal conditions. The layered MnO2 nanosheets underwent a structural expansion to nanoflakes before the curling and re-folding of layered MnO2 nanosheets occurred. The intermediate states and structural transitions via a layer compression, for the first time, were experimentally recorded at a single-NP scale using electron microscopy. Moreover, we found the electrocatalytic activity of AuNP@MnO2 nanosheets was enhanced roughly 30-40 times, compared to that of pure MnO2 nanosheets and AuNPs. The strong interaction of metal-oxide interfaces (MnO2 nanosheets and AuNPs) was likely responsible for the improved electrocatalytic activity. This interaction of MnO2 and AuNPs was weakened in the course of hydrothermal treatment where partially positively charged Au+ was reduced at elevated temperatures, accompanying with the decrease of ORR activity. This insight into the effect of topological nanostructures and metal-oxide interactions on the electrocatalytic performance of the MnOx family is believed to illustrate an alternative pathway to develop new efficient electrocatalysts.
Author He, Jie
Liu, Ben
Zheng, Haoquan
Mosa, Islam M.
Song, Wenqiao
Kuo, Chung-Hao
Rusling, James F.
Suib, Steven L.
Author_xml – sequence: 1
  givenname: Ben
  surname: Liu
  fullname: Liu, Ben
– sequence: 2
  givenname: Islam M.
  surname: Mosa
  fullname: Mosa, Islam M.
– sequence: 3
  givenname: Wenqiao
  surname: Song
  fullname: Song, Wenqiao
– sequence: 4
  givenname: Haoquan
  surname: Zheng
  fullname: Zheng, Haoquan
  organization: Institutionen för material- och miljökemi (MMK)
– sequence: 5
  givenname: Chung-Hao
  surname: Kuo
  fullname: Kuo, Chung-Hao
– sequence: 6
  givenname: James F.
  surname: Rusling
  fullname: Rusling, James F.
– sequence: 7
  givenname: Steven L.
  surname: Suib
  fullname: Suib, Steven L.
– sequence: 8
  givenname: Jie
  surname: He
  fullname: He, Jie
BackLink https://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-131175$$DView record from Swedish Publication Index
BookMark eNotjMtOwzAURL0oEqV0wxfkAxq4tuM43hGVp1QoC8o2chznQVM7sh0Qf09auJs5M5q5F2hmrNEIXWG4xkDFjUqDBAKYtzM0J8Ag5kmWnaOl958wXQaQCjFH-51R1nxpEzprZB_54EYVRjehNFV0sG5obW-bTk1JcNL47tj0ka0jI431rdbBr05c93Kv_Wl3tM5Wp1o-vr7dvpgtuURntey9Xv7rAu0e7t_XT_Fm-_i8zjdxQ4gIcVqKjFLOE9CK4ZozVpYUOJQVsGrilCrCONFporKSU0UrTWrJBKNTiklKF2j199d_62Esi8F1B-l-Ciu74q77yAvrmsKPBaYYc0Z_AQHWXww
ContentType Journal Article
DBID ADTPV
AOWAS
DG7
DOI 10.1039/c6ta02017h
DatabaseName SwePub
SwePub Articles
SWEPUB Stockholms universitet
DatabaseTitleList
DeliveryMethod fulltext_linktorsrc
Discipline Engineering
ExternalDocumentID oai_DiVA_org_su_131175
GroupedDBID -JG
0-7
0R~
705
AAEMU
AAIWI
AAJAE
AANOJ
AAWGC
AAXHV
ABASK
ABDVN
ABEMK
ABJNI
ABPDG
ABRYZ
ABXOH
ACGFS
ACIWK
ACLDK
ADMRA
ADSRN
ADTPV
AEFDR
AENEX
AENGV
AESAV
AETIL
AFLYV
AFOGI
AFRAH
AFRDS
AFVBQ
AGEGJ
AGRSR
AGSTE
AHGCF
ALMA_UNASSIGNED_HOLDINGS
ANBJS
ANUXI
AOWAS
APEMP
ASKNT
AUDPV
AUNWK
BLAPV
BSQNT
C6K
DG7
EBS
ECGLT
EE0
EF-
EJD
GGIMP
GNO
H13
HZ~
H~N
J3G
J3H
J3I
O-G
O9-
R7C
RAOCF
RCNCU
RNS
ROL
RPMJG
RRC
RSCEA
SKA
SKF
SLH
UCJ
ID FETCH-LOGICAL-g229t-6b98337740ec51f755bb3070bd05d5bb63c2572e64c8b73c3de2fa59535721263
ISSN 2050-7488
IngestDate Sat Aug 24 00:40:14 EDT 2024
IsPeerReviewed true
IsScholarly true
Issue 17
Language English
LinkModel OpenURL
MergedId FETCHMERGED-LOGICAL-g229t-6b98337740ec51f755bb3070bd05d5bb63c2572e64c8b73c3de2fa59535721263
ParticipantIDs swepub_primary_oai_DiVA_org_su_131175
PublicationCentury 2000
PublicationDate 2016
PublicationDateYYYYMMDD 2016-01-01
PublicationDate_xml – year: 2016
  text: 2016
PublicationDecade 2010
PublicationTitle Journal of materials chemistry. A, Materials for energy and sustainability
PublicationYear 2016
SSID ssj0000800699
Score 2.3727834
Snippet Two-dimensional (2-D) layered inorganic materials with ultra-high surface area and mechanical strength have shown impressive photo-/electro-catalytic...
SourceID swepub
SourceType Open Access Repository
StartPage 6447
Title Unconventional structural and morphological transitions of nanosheets, nanoflakes and nanorods of AuNP@MnO2
URI https://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-131175
Volume 4
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV1Lb9NAEF6F9AKHivIQj1LtgZ6Cg70PP25YUBRQUzgk0Ju1u163UcEujXPhD_C3md31KyhIhYtlbzZ2st-nmfFo5luEXsaMCc2iwlNxQD3Gk9iT2hS6FlLpOKYisGLV87NwtmQfz_n5aPRrULW0qeVU_dzZV_I_qMIY4Gq6ZP8B2e6mMADngC8cAWE43grjZblVNO60YK2OhkmHf69gDTvbVhuntOrq3kpRVutLrWuLo7kqvokr7RSbzSUYVjsx3Zx9Pmb-vPxE_hLIQszr_uxEtbvHTSepawRqP7HC4q7N0Gbq27YtU5nbJfVPVxtLt747bV6tbXBriTuZT7t8UFNI_FWXP1ai6rPf2o3PBPi7hvdNSsP1WjqbR3zuG3nTeGig2ZCH0cDaQiwX7XQDPjUqqiqsBUTDQXTZO7stWe13qy9pVt1cZOtNZmSHIn4H7ZEIXhnHaC89WXw47dJ1JrAO7W6k3U9sxW5p8rp_0h-KszZKWdxH-w0qOHVcOUAjXT5A9waikw_R1TZrcM8aDNDgLdbgAWtwVeCeNa9wzxn7vZYzZprhzBvDmEdo-f5k8XbmNVtueBeEJLUXyiSmFF4JfK14UEScS2m8gsx9nsN5SBXYeKJDpmIZUUVzTQrBE05hNCAhfYzGZVXqJwibrm8ZCkUTkbA8UoLnghBfUJ0HcB_2FB27lcquna5KthuSZ7ec9xzdNVxy6bFDNIbF0y8gYKzlUQPmb2HfdrY
link.rule.ids 230,315,786,790,891,4043,27956,27957,27958
linkProvider Royal Society of Chemistry
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=Unconventional+structural+and+morphological+transitions+of+nanosheets%2C+nanoflakes+and+nanorods+of+AuNP%40MnO2&rft.jtitle=Journal+of+materials+chemistry.+A%2C+Materials+for+energy+and+sustainability&rft.au=Liu%2C+Ben&rft.au=Mosa%2C+Islam+M.&rft.au=Song%2C+Wenqiao&rft.au=Zheng%2C+Haoquan&rft.date=2016&rft.issn=2050-7488&rft.volume=4&rft.issue=17&rft.spage=6447&rft_id=info:doi/10.1039%2Fc6ta02017h&rft.externalDocID=oai_DiVA_org_su_131175
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=2050-7488&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=2050-7488&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=2050-7488&client=summon