Pauling‐Type Adsorption of O2 Induced by Heteroatom Doped ZnIn2S4 for Boosted Solar‐Driven H2O2 Production

Breaking the trade‐off between activity and selectivity has perennially been a formidable endeavor in the field of hydrogen peroxide (H2O2) photosynthesis, especially the side‐on configuration of oxygen (O2) on the catalyst surface will cause the cleavage of O−O bonds, which drastically hinders the...

Full description

Saved in:
Bibliographic Details
Published inAngewandte Chemie International Edition Vol. 63; no. 5
Main Authors Zhang, Kailian, Tian, Lei, Yang, Jingfei, Wu, Fengxiu, Wang, Leigang, Tang, Hua, Liu, Zhao‐Qing
Format Journal Article
LanguageEnglish
Published Weinheim Wiley Subscription Services, Inc 25.01.2024
EditionInternational ed. in English
Subjects
Online AccessGet full text
ISSN1433-7851
1521-3773
DOI10.1002/anie.202317816

Cover

Abstract Breaking the trade‐off between activity and selectivity has perennially been a formidable endeavor in the field of hydrogen peroxide (H2O2) photosynthesis, especially the side‐on configuration of oxygen (O2) on the catalyst surface will cause the cleavage of O−O bonds, which drastically hinders the H2O2 production performance. Herein, we present an atomically heteroatom P doped ZnIn2S4 catalyst with tunable oxygen adsorption configuration to accelerate the ORR kinetics essential for solar‐driven H2O2 production. Indeed, the spectroscopy characterizations (such as EXAFS and in situ FTIR) and DFT calculations reveal that heteroatom P doped ZnIn2S4 at substitutional and interstitial sites, which not only optimizes the coordination environment of Zn active sites, but also facilitates electron transfer to the Zn sites and improves charge density, avoiding the breakage of O−O bonds and reducing the energy barriers to H2O2 production. As a result, the oxygen adsorption configuration is regulated from side‐on (Yeager‐type) to end‐on (Pauling‐type), resulting in the accelerated ORR kinetics from 874.94 to 2107.66 μmol g−1 h−1. This finding offers a new avenue toward strategic tailoring oxygen adsorption configuration by the rational design of doped photocatalyst. The cleavage of O−O bonds drastically hinder the H2O2 production performance. This work presents a strategy that atomically heteroatom P doped ZnIn2S4 at substitutional and interstitial sites, which not only optimizes the coordination environment of Zn active sites but also facilitates electron transfer to the Zn sites and improves charge density, avoiding the breakage of O−O bonds and reducing the energy barriers to H2O2 production.
AbstractList Breaking the trade‐off between activity and selectivity has perennially been a formidable endeavor in the field of hydrogen peroxide (H2O2) photosynthesis, especially the side‐on configuration of oxygen (O2) on the catalyst surface will cause the cleavage of O−O bonds, which drastically hinders the H2O2 production performance. Herein, we present an atomically heteroatom P doped ZnIn2S4 catalyst with tunable oxygen adsorption configuration to accelerate the ORR kinetics essential for solar‐driven H2O2 production. Indeed, the spectroscopy characterizations (such as EXAFS and in situ FTIR) and DFT calculations reveal that heteroatom P doped ZnIn2S4 at substitutional and interstitial sites, which not only optimizes the coordination environment of Zn active sites, but also facilitates electron transfer to the Zn sites and improves charge density, avoiding the breakage of O−O bonds and reducing the energy barriers to H2O2 production. As a result, the oxygen adsorption configuration is regulated from side‐on (Yeager‐type) to end‐on (Pauling‐type), resulting in the accelerated ORR kinetics from 874.94 to 2107.66 μmol g−1 h−1. This finding offers a new avenue toward strategic tailoring oxygen adsorption configuration by the rational design of doped photocatalyst. The cleavage of O−O bonds drastically hinder the H2O2 production performance. This work presents a strategy that atomically heteroatom P doped ZnIn2S4 at substitutional and interstitial sites, which not only optimizes the coordination environment of Zn active sites but also facilitates electron transfer to the Zn sites and improves charge density, avoiding the breakage of O−O bonds and reducing the energy barriers to H2O2 production.
Breaking the trade‐off between activity and selectivity has perennially been a formidable endeavor in the field of hydrogen peroxide (H2O2) photosynthesis, especially the side‐on configuration of oxygen (O2) on the catalyst surface will cause the cleavage of O−O bonds, which drastically hinders the H2O2 production performance. Herein, we present an atomically heteroatom P doped ZnIn2S4 catalyst with tunable oxygen adsorption configuration to accelerate the ORR kinetics essential for solar‐driven H2O2 production. Indeed, the spectroscopy characterizations (such as EXAFS and in situ FTIR) and DFT calculations reveal that heteroatom P doped ZnIn2S4 at substitutional and interstitial sites, which not only optimizes the coordination environment of Zn active sites, but also facilitates electron transfer to the Zn sites and improves charge density, avoiding the breakage of O−O bonds and reducing the energy barriers to H2O2 production. As a result, the oxygen adsorption configuration is regulated from side‐on (Yeager‐type) to end‐on (Pauling‐type), resulting in the accelerated ORR kinetics from 874.94 to 2107.66 μmol g−1 h−1. This finding offers a new avenue toward strategic tailoring oxygen adsorption configuration by the rational design of doped photocatalyst.
Author Yang, Jingfei
Liu, Zhao‐Qing
Wu, Fengxiu
Tian, Lei
Wang, Leigang
Tang, Hua
Zhang, Kailian
Author_xml – sequence: 1
  givenname: Kailian
  surname: Zhang
  fullname: Zhang, Kailian
  organization: Jiangsu University
– sequence: 2
  givenname: Lei
  surname: Tian
  fullname: Tian, Lei
  organization: Guangzhou University, Guangzhou Higher Education Mega Center
– sequence: 3
  givenname: Jingfei
  surname: Yang
  fullname: Yang, Jingfei
  organization: Guangzhou University, Guangzhou Higher Education Mega Center
– sequence: 4
  givenname: Fengxiu
  surname: Wu
  fullname: Wu, Fengxiu
  organization: Guangzhou University, Guangzhou Higher Education Mega Center
– sequence: 5
  givenname: Leigang
  surname: Wang
  fullname: Wang, Leigang
  organization: Jiangsu University
– sequence: 6
  givenname: Hua
  surname: Tang
  fullname: Tang, Hua
  organization: Qingdao University
– sequence: 7
  givenname: Zhao‐Qing
  orcidid: 0000-0002-0727-7809
  surname: Liu
  fullname: Liu, Zhao‐Qing
  email: lzqgzu@gzhu.edu.cn
  organization: Guangzhou University, Guangzhou Higher Education Mega Center
BookMark eNo9kEFLwzAUx4NMcJtePQc8V_OSNmmOc5uuMNxg8-KlpG0mHV1S01bpzY_gZ_STmDEZ7_De-_P4PfiN0MBYoxG6BXIPhNAHZUp9TwllIGLgF2gIEYWACcEGfg4ZC0QcwRUaNc3e38cx4UNk1qqrSvP--_2z7WuNJ0VjXd2W1mC7wyuKE1N0uS5w1uOFbrWzqrUHPLO1z95MYugmxDvr8KO1Teuzja2U87SZKz-1wQvqGWtnPeQIvUaXO1U1-ua_j9Hr03w7XQTL1XMynSyDmjLGA5VFeSFEKAgUPJYRz2XBhZYxQKyk1qHIfdGQyRyiXBCd8UgLkCFInYmsYGN0d-LWzn50umnTve2c8S9TKoFTYMQLGSN5uvoqK92ntSsPyvUpkPQoND0KTc9C08lLMj9v7A_cVW6d
ContentType Journal Article
Copyright 2023 Wiley‐VCH GmbH
2024 Wiley‐VCH GmbH
Copyright_xml – notice: 2023 Wiley‐VCH GmbH
– notice: 2024 Wiley‐VCH GmbH
DBID 7TM
K9.
DOI 10.1002/anie.202317816
DatabaseName Nucleic Acids Abstracts
ProQuest Health & Medical Complete (Alumni)
DatabaseTitle ProQuest Health & Medical Complete (Alumni)
Nucleic Acids Abstracts
DatabaseTitleList
ProQuest Health & Medical Complete (Alumni)
DeliveryMethod fulltext_linktorsrc
Discipline Chemistry
EISSN 1521-3773
Edition International ed. in English
EndPage n/a
ExternalDocumentID ANIE202317816
Genre shortCommunication
GrantInformation_xml – fundername: Basic and Applied Basic Research Program of Guangzhou
  funderid: SL2024A03J00499
– fundername: University Innovation Team Scientific Research Project of Guangzhou
  funderid: 202235246
– fundername: Guangdong Graduate Education Innovation Program
  funderid: 2023JGXM_102
– fundername: Outstanding Youth Project of Guangdong Natural Science Foundation
  funderid: 2020B1515020028
– fundername: Natural Science Foundation of China
  funderid: 22278094
– fundername: The Undergraduate Innovation Training Program of Guangzhou University
  funderid: 202211078121
GroupedDBID ---
-DZ
-~X
.3N
.GA
05W
0R~
10A
1L6
1OB
1OC
1ZS
23M
33P
3SF
3WU
4.4
4ZD
50Y
50Z
51W
51X
52M
52N
52O
52P
52S
52T
52U
52W
52X
53G
5GY
5RE
5VS
66C
6TJ
702
7PT
8-0
8-1
8-3
8-4
8-5
8UM
930
A03
AAESR
AAEVG
AAHQN
AAMNL
AANLZ
AAONW
AAXRX
AAYCA
AAZKR
ABCQN
ABCUV
ABDBF
ABEML
ABIJN
ABJNI
ABLJU
ABPPZ
ABPVW
ACAHQ
ACCZN
ACFBH
ACGFS
ACIWK
ACNCT
ACPOU
ACPRK
ACSCC
ACXBN
ACXQS
ADBBV
ADEOM
ADIZJ
ADKYN
ADMGS
ADOZA
ADXAS
ADZMN
AEIGN
AEIMD
AEUYR
AEYWJ
AFBPY
AFFNX
AFFPM
AFGKR
AFRAH
AFWVQ
AFZJQ
AGHNM
AGYGG
AHBTC
AHMBA
AITYG
AIURR
AJXKR
ALAGY
ALMA_UNASSIGNED_HOLDINGS
ALUQN
ALVPJ
AMBMR
AMYDB
ATUGU
AUFTA
AZBYB
AZVAB
BAFTC
BDRZF
BFHJK
BHBCM
BMNLL
BMXJE
BNHUX
BROTX
BRXPI
BTSUX
BY8
CS3
D-E
D-F
D0L
DCZOG
DPXWK
DR1
DR2
DRFUL
DRSTM
EBS
F00
F01
F04
F5P
G-S
G.N
GNP
GODZA
H.T
H.X
HBH
HGLYW
HHY
HHZ
HZ~
IX1
J0M
JPC
KQQ
LATKE
LAW
LC2
LC3
LEEKS
LH4
LITHE
LOXES
LP6
LP7
LUTES
LYRES
MEWTI
MK4
MRFUL
MRSTM
MSFUL
MSSTM
MXFUL
MXSTM
N04
N05
N9A
NF~
NNB
O66
O9-
OIG
P2P
P2W
P2X
P4D
PQQKQ
Q.N
Q11
QB0
QRW
R.K
RNS
ROL
RX1
RYL
SUPJJ
TN5
UB1
UPT
UQL
V2E
W8V
W99
WBFHL
WBKPD
WH7
WIB
WIH
WIK
WJL
WOHZO
WQJ
WXSBR
WYISQ
XG1
XPP
XSW
XV2
YZZ
ZZTAW
~IA
~KM
~WT
7TM
K9.
ID FETCH-LOGICAL-p2336-ab5cd774701d68956c9d67e98118a9ee47c7c72439c15c70eb65e719419eb7bd3
IEDL.DBID DR2
ISSN 1433-7851
IngestDate Sun Jul 13 05:36:18 EDT 2025
Wed Aug 20 07:27:26 EDT 2025
IsPeerReviewed true
IsScholarly true
Issue 5
Language English
LinkModel DirectLink
MergedId FETCHMERGED-LOGICAL-p2336-ab5cd774701d68956c9d67e98118a9ee47c7c72439c15c70eb65e719419eb7bd3
Notes ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 14
ORCID 0000-0002-0727-7809
PQID 2916213043
PQPubID 946352
PageCount 9
ParticipantIDs proquest_journals_2916213043
wiley_primary_10_1002_anie_202317816_ANIE202317816
PublicationCentury 2000
PublicationDate January 25, 2024
PublicationDateYYYYMMDD 2024-01-25
PublicationDate_xml – month: 01
  year: 2024
  text: January 25, 2024
  day: 25
PublicationDecade 2020
PublicationPlace Weinheim
PublicationPlace_xml – name: Weinheim
PublicationTitle Angewandte Chemie International Edition
PublicationYear 2024
Publisher Wiley Subscription Services, Inc
Publisher_xml – name: Wiley Subscription Services, Inc
References 2022; 144
2023; 62
2023; 35
2019; 4
2021; 4
2023; 33
2023; 22
2019; 31
2022; 61
2023; 16
2019; 10
2023; 465
2023; 145
2023; 19
2022; 34
2022; 13
2018; 30
2020; 10
2020; 32
2022; 2
2022; 435
2022; 18
2017; 139
References_xml – volume: 139
  start-page: 7586
  year: 2017
  end-page: 7594
  publication-title: J. Am. Chem. Soc.
– volume: 4
  start-page: 615
  year: 2021
  end-page: 622
  publication-title: Nat. Catal.
– volume: 145
  start-page: 16584
  year: 2023
  end-page: 16596
  publication-title: J. Am. Chem. Soc.
– volume: 61
  year: 2022
  publication-title: Angew. Chem. Int. Ed.
– volume: 18
  year: 2022
  publication-title: Small
– volume: 16
  start-page: 460
  year: 2023
  publication-title: Energy Environ. Sci.
– volume: 22
  start-page: 762
  year: 2023
  end-page: 768
  publication-title: Nat. Mater.
– volume: 13
  start-page: 2806
  year: 2022
  publication-title: Nat. Commun.
– volume: 144
  start-page: 20620
  year: 2022
  end-page: 20629
  publication-title: J. Am. Chem. Soc.
– volume: 144
  start-page: 740
  year: 2022
  end-page: 750
  publication-title: J. Am. Chem. Soc.
– volume: 465
  year: 2023
  publication-title: Chem. Eng. J.
– volume: 2
  start-page: 1919
  year: 2022
  end-page: 1960
  publication-title: Chem Catal.
– volume: 35
  year: 2023
  publication-title: Adv. Mater.
– volume: 4
  start-page: 575
  year: 2019
  end-page: 584
  publication-title: Nat. Energy
– volume: 10
  start-page: 4421
  year: 2019
  publication-title: Nat. Commun.
– volume: 62
  year: 2023
  publication-title: Angew. Chem. Int. Ed.
– volume: 31
  year: 2019
  publication-title: Adv. Mater.
– volume: 34
  year: 2022
  publication-title: Adv. Mater.
– volume: 145
  start-page: 3647
  year: 2023
  end-page: 3655
  publication-title: J. Am. Chem. Soc.
– volume: 33
  year: 2023
  publication-title: Adv. Funct. Mater.
– volume: 145
  start-page: 20837
  year: 2023
  end-page: 20848
  publication-title: J. Am. Chem. Soc.
– volume: 435
  year: 2022
  publication-title: Chem. Eng. J.
– volume: 145
  start-page: 5297
  year: 2023
  end-page: 5309
  publication-title: J. Am. Chem. Soc.
– volume: 16
  start-page: 446
  year: 2023
  publication-title: Energy Environ. Sci.
– volume: 30
  year: 2018
  publication-title: Adv. Mater.
– volume: 4
  start-page: 374
  year: 2021
  end-page: 384
  publication-title: Nat. Catal.
– volume: 145
  start-page: 2698
  year: 2023
  end-page: 2707
  publication-title: J. Am. Chem. Soc.
– volume: 145
  start-page: 8609
  year: 2023
  end-page: 8620
  publication-title: J. Am. Chem. Soc.
– volume: 16
  year: 2023
  publication-title: Angew. Chem. Int. Ed.
– volume: 32
  year: 2020
  publication-title: Adv. Mater.
– volume: 19
  year: 2023
  publication-title: Small
– volume: 10
  start-page: 4313
  year: 2020
  end-page: 4318
  publication-title: ACS Catal.
– volume: 144
  start-page: 21328
  year: 2022
  end-page: 21336
  publication-title: J. Am. Chem. Soc.
SSID ssj0028806
Score 2.633044
Snippet Breaking the trade‐off between activity and selectivity has perennially been a formidable endeavor in the field of hydrogen peroxide (H2O2) photosynthesis,...
SourceID proquest
wiley
SourceType Aggregation Database
Publisher
SubjectTerms Adsorption
Catalysts
Charge Density
Configuration management
Electron transfer
H2O2 Production
Hydrogen peroxide
Kinetics
Oxygen
P Doping
Pauling-Type
Photosynthesis
Spectroscopy
Zn Active Sites
Title Pauling‐Type Adsorption of O2 Induced by Heteroatom Doped ZnIn2S4 for Boosted Solar‐Driven H2O2 Production
URI https://onlinelibrary.wiley.com/doi/abs/10.1002%2Fanie.202317816
https://www.proquest.com/docview/2916213043
Volume 63
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
journalDatabaseRights – providerCode: PRVEBS
  databaseName: EBSCOhost Academic Search Ultimate
  customDbUrl: https://search.ebscohost.com/login.aspx?authtype=ip,shib&custid=s3936755&profile=ehost&defaultdb=asn
  eissn: 1521-3773
  dateEnd: 20241001
  omitProxy: true
  ssIdentifier: ssj0028806
  issn: 1433-7851
  databaseCode: ABDBF
  dateStart: 20120604
  isFulltext: true
  titleUrlDefault: https://search.ebscohost.com/direct.asp?db=asn
  providerName: EBSCOhost
– providerCode: PRVWIB
  databaseName: Wiley Online Library - Core collection (SURFmarket)
  issn: 1433-7851
  databaseCode: DR2
  dateStart: 19980101
  customDbUrl:
  isFulltext: true
  eissn: 1521-3773
  dateEnd: 99991231
  omitProxy: false
  ssIdentifier: ssj0028806
  providerName: Wiley-Blackwell
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV07T8MwELYQCyy8EYWCPLC6TewkjsfSh1okCqJUqlgiv7ogkqqPASZ-Ar-RX8I5aUrLCMqSRLKVnO_O3yV33yF0HY81HfuaEiM9RQKhOJFxYIngJmRSKGmtK3C-60fdYXA7CkdrVfwFP8Tqg5uzjNxfOwOXalb_IQ11Fdg11_zb57HvOLd9Fub_aR9X_FEUlLMoL2KMuC70JWujR-ubwzfw5TpKzbeZzj6S5QMW2SUvtcVc1fT7L-7G_7zBAdpbYlDcKJTmEG3Z9AjtNMvWb8codfmCsKd9fXy6OBU3zCyb5r4FZ2N8T7Fr-KGtweoNd10-TQah-ytuZRO495z2UjoIMKBhfJPlNSR44AJomK01dc4VdynM8VBwzcKkJ2jYaT81u2TZmIFMKGMRkSrUBnAj93wTxRBhaWEibkUM0YoU1gZcw0EB62g_1NyzKgot90XgC6u4MuwUbadZas8QjlRkHRnpWADQMJZLgFMU1MfC0jEeexVULRcmWVrXLKGAaSlsvgGrIJpLOJkU3BxJwcJMEyfbZCXbpNHvtVdX538ZdIF24dxl7BAaVtH2fLqwl4BH5uoq17lvPxPZdw
linkProvider Wiley-Blackwell
linkToHtml http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV3JTsMwELVYDuXCjlgK-MDVJXEWx8fSglKWgmiREJcoXnpBJFUpBzjxCXwjX8JM0hTKEZRTLNlKxjP2G3vmDSFH0UDzgas5M6mjmC-VYGnkWyaFCbxUqtRaTHC-6obxnX9-H1TRhJgLU_JDTA_c0DKK9RoNHA-kj79ZQzEFu4HVv10RueE8WcRLOrTN9u2UQYqDepYJRp7HsA59xdvo8OPZ_jMI8ydOLTaasxWiqk8s40seGy9j1dBvv9gb__UPq2R5AkNps9SbNTJns3VSa1XV3zZIhiGDsK19vn-gq0qb5jkfFcsLzQf0mlOs-aGtoeqVxhhSk4P3_kTb-RDaHrJOxns-BUBMT_IijYT20IeG0dojXF9pzGGMm5JuFgbdJHdnp_1WzCa1GdiQe17IUhVoA9BROK4JI3CytDShsDIChyWV1vpCw8MB7mg30MKxKgyscKXvSquEMt4WWcjyzG4TGqrQIh_pQALWMFakgKg4aJCFufNE5OyQejUzycTAnhMOsJbD_ut7O4QXIk6GJT1HUhIx8wRlm0xlmzS7ndPp2-5fOh2SWty_ukwuO92LPbIE7RjAw3hQJwvj0YvdB3gyVgeFAn4B6i_dkw
linkToPdf http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV3JTsMwELWgSMCFHVEo4ANXl8RJ7PhYuqhlKYhSCXGJ4iUXRFJ1OcCJT-Ab-RLGSVsoR1BOseRRMp6x31gzbxA6CxNFE1dRomNHEl9ITuLQN0RwHXixkLExtsD5psvaff_yMXj8UcVf8EPML9ysZ-T7tXXwgU7Ov0lDbQV21Tb_dnnosmW04jMIsSwsup8TSFGwzqK-yPOIbUM_o2106Pni_AWA-ROm5udMaxPFsy8s0kueq5OxrKq3X-SN__mFLbQxBaG4VljNNloy6Q5aq896v-2i1CYMwqH2-f5hA1Vc06NsmG8uOEvwLcW244cyGstX3LYJNRnE7i-4kQ1g7CntpLTnY4DD-CLLi0hwz0bQIK0xtLsrblOQcVeQzYLQPdRvNR_qbTLtzEAG1PMYiWWgNABH7riahRBiKaEZNyKEcCUWxvhcwUMB7Cg3UNwxkgWGu8J3hZFcam8fldIsNQcIM8mMZSNNBCANbXgMeIqC_RhYOo-HThlVZgsTTd1rFFEAtRROX98rI5prOBoU5BxRQcNMI6vbaK7bqNbtNOdvh3-ZdIpW7xqt6LrTvTpC6zBss3cIDSqoNB5OzDFgk7E8yc3vC2xa3EI
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=Pauling%E2%80%90Type+Adsorption+of+O2+Induced+by+Heteroatom+Doped+ZnIn2S4+for+Boosted+Solar%E2%80%90Driven+H2O2+Production&rft.jtitle=Angewandte+Chemie+International+Edition&rft.au=Zhang%2C+Kailian&rft.au=Tian%2C+Lei&rft.au=Yang%2C+Jingfei&rft.au=Wu%2C+Fengxiu&rft.date=2024-01-25&rft.pub=Wiley+Subscription+Services%2C+Inc&rft.issn=1433-7851&rft.eissn=1521-3773&rft.volume=63&rft.issue=5&rft_id=info:doi/10.1002%2Fanie.202317816&rft.externalDBID=NO_FULL_TEXT
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=1433-7851&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=1433-7851&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=1433-7851&client=summon