Atomic defects in monolayer ordered double transition metal carbide (Mo2TiC2Tx) MXene and CO2 adsorption

Transition metal carbides (MXenes) with formula Mn+1CnTx (n = 2 and 3) have been emerging as a new family of two-dimensional (2D) materials that have great potential in electronic applications and CO2 conversion catalysts. It has been already found that the electronic and electrochemical properties...

Full description

Saved in:
Bibliographic Details
Published inJournal of materials chemistry. C, Materials for optical and electronic devices Vol. 8; no. 14; pp. 4771 - 4779
Main Authors Khaledialidusti, Rasoul, Mishra, Abhishek Kumar, Afrooz Barnoush
Format Journal Article
LanguageEnglish
Published Cambridge Royal Society of Chemistry 01.01.2020
Subjects
Online AccessGet full text
ISSN2050-7526
2050-7534
DOI10.1039/c9tc06046d

Cover

Abstract Transition metal carbides (MXenes) with formula Mn+1CnTx (n = 2 and 3) have been emerging as a new family of two-dimensional (2D) materials that have great potential in electronic applications and CO2 conversion catalysts. It has been already found that the electronic and electrochemical properties of Ti3C2Tx MXenes can be tuned by replacing the two outer titanium layers with molybdenum layers. Similar to other 2D materials, intrinsic defects can be formed in the synthesized MXene flakes and the formation of defects can influence the performance of these materials. Herein, we systematically study the effect of the different types of structural defects on the structural stability, electronic behavior, and electrochemical properties of ordered Mo2TiC2Tx terminated with the specific surface functional groups of fluorine, oxygen, and hydroxide. The calculated defect formation energies imply that the formation of defects is dependent on the surface terminations, where the O-terminated MXenes demand more energy than the F- and OH-terminated MXenes. We found that defect formation is more feasible in the outer molybdenum layers than in the inner titanium layer. Our results predicted that the CO2 molecule adsorbs on the defective surfaces through a spontaneous and exothermic process that is critical to its capture, while the perfect surface weakly attracts the molecule through a nonspontaneous and endothermic process. Thus, our study predicts that the electronic and electrochemical properties of Mo2TiC2Tx can be tuned by forming specific defects and these MXenes could be promising materials for CO2 adsorption and conversion.
AbstractList Transition metal carbides (MXenes) with formula Mn+1CnTx (n = 2 and 3) have been emerging as a new family of two-dimensional (2D) materials that have great potential in electronic applications and CO2 conversion catalysts. It has been already found that the electronic and electrochemical properties of Ti3C2Tx MXenes can be tuned by replacing the two outer titanium layers with molybdenum layers. Similar to other 2D materials, intrinsic defects can be formed in the synthesized MXene flakes and the formation of defects can influence the performance of these materials. Herein, we systematically study the effect of the different types of structural defects on the structural stability, electronic behavior, and electrochemical properties of ordered Mo2TiC2Tx terminated with the specific surface functional groups of fluorine, oxygen, and hydroxide. The calculated defect formation energies imply that the formation of defects is dependent on the surface terminations, where the O-terminated MXenes demand more energy than the F- and OH-terminated MXenes. We found that defect formation is more feasible in the outer molybdenum layers than in the inner titanium layer. Our results predicted that the CO2 molecule adsorbs on the defective surfaces through a spontaneous and exothermic process that is critical to its capture, while the perfect surface weakly attracts the molecule through a nonspontaneous and endothermic process. Thus, our study predicts that the electronic and electrochemical properties of Mo2TiC2Tx can be tuned by forming specific defects and these MXenes could be promising materials for CO2 adsorption and conversion.
Author Mishra, Abhishek Kumar
Afrooz Barnoush
Khaledialidusti, Rasoul
Author_xml – sequence: 1
  givenname: Rasoul
  surname: Khaledialidusti
  fullname: Khaledialidusti, Rasoul
– sequence: 2
  givenname: Abhishek
  surname: Mishra
  middlename: Kumar
  fullname: Mishra, Abhishek Kumar
– sequence: 3
  fullname: Afrooz Barnoush
BookMark eNo9TjlPwzAYtVCRKKULv8ASCwwBH4mdjFXEJbXqEiS2ysdnSJXaxXYk-PcEgXjLe8O7ztHMBw8IXVJySwlv7kyTDRGkFPYEzRmpSCErXs7-NRNnaJnSnkyoqahFM0fvqxwOvcEWHJiccO_xIfgwqC-IOEQLESy2YdQD4ByVT33uw-SBrAZsVNS9BXy9CazrW9Z93uDNK3jAylvcbhlWNoV4_IlcoFOnhgTLP16gl4f7rn0q1tvH53a1Lt44Y7ngWkzXNBOqdloKBY44rSvFueHaqcYI6pxxjNe2ZEo6W5pqcjTW0FrSyvIFuvrtPcbwMULKu30Yo58md1NIVpLwkvJvqD5bxQ
ContentType Journal Article
Copyright Copyright Royal Society of Chemistry 2020
Copyright_xml – notice: Copyright Royal Society of Chemistry 2020
DBID 7SP
7U5
8FD
L7M
DOI 10.1039/c9tc06046d
DatabaseName Electronics & Communications Abstracts
Solid State and Superconductivity Abstracts
Technology Research Database
Advanced Technologies Database with Aerospace
DatabaseTitle Solid State and Superconductivity Abstracts
Technology Research Database
Advanced Technologies Database with Aerospace
Electronics & Communications Abstracts
DatabaseTitleList Solid State and Superconductivity Abstracts
DeliveryMethod fulltext_linktorsrc
Discipline Engineering
Physics
EISSN 2050-7534
EndPage 4779
GroupedDBID 0-7
0R~
4.4
705
7SP
7U5
8FD
AAEMU
AAIWI
AAJAE
AANOJ
AAWGC
AAXHV
ABASK
ABDVN
ABEMK
ABJNI
ABPDG
ABRYZ
ABXOH
ACGFS
ACLDK
ADMRA
ADSRN
AEFDR
AENEX
AENGV
AESAV
AETIL
AFLYV
AFOGI
AFRDS
AFRZK
AFVBQ
AGEGJ
AGRSR
AHGCF
AKMSF
ALMA_UNASSIGNED_HOLDINGS
ALUYA
ANUXI
APEMP
ASKNT
AUDPV
BLAPV
BSQNT
C6K
EBS
ECGLT
EE0
EF-
GGIMP
GNO
H13
HZ~
H~N
J3I
L7M
O-G
O9-
R7C
RAOCF
RCNCU
RNS
RPMJG
RRC
RSCEA
SKA
SKF
SLH
ID FETCH-LOGICAL-g322t-3b6816b26a8fb76aef0fbb5a33c3bfa9c61ffcf238d42a7fd4c50fb9dc18715d3
ISSN 2050-7526
IngestDate Sun Jun 29 16:15:24 EDT 2025
IsDoiOpenAccess false
IsOpenAccess true
IsPeerReviewed true
IsScholarly true
Issue 14
Language English
LinkModel OpenURL
MergedId FETCHMERGED-LOGICAL-g322t-3b6816b26a8fb76aef0fbb5a33c3bfa9c61ffcf238d42a7fd4c50fb9dc18715d3
Notes ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 14
OpenAccessLink https://hdl.handle.net/11250/2773728
PQID 2387570341
PQPubID 2047521
PageCount 9
ParticipantIDs proquest_journals_2387570341
PublicationCentury 2000
PublicationDate 20200101
PublicationDateYYYYMMDD 2020-01-01
PublicationDate_xml – month: 01
  year: 2020
  text: 20200101
  day: 01
PublicationDecade 2020
PublicationPlace Cambridge
PublicationPlace_xml – name: Cambridge
PublicationTitle Journal of materials chemistry. C, Materials for optical and electronic devices
PublicationYear 2020
Publisher Royal Society of Chemistry
Publisher_xml – name: Royal Society of Chemistry
SSID ssj0000816869
Score 2.5290923
Snippet Transition metal carbides (MXenes) with formula Mn+1CnTx (n = 2 and 3) have been emerging as a new family of two-dimensional (2D) materials that have great...
SourceID proquest
SourceType Aggregation Database
StartPage 4771
SubjectTerms Adsorption
Carbon dioxide
Conversion
Defects
Electrochemical analysis
Endothermic reactions
Flakes (defects)
Fluorine
Free energy
Functional groups
Heat of formation
Metal carbides
Molybdenum
MXenes
Properties (attributes)
Structural stability
Surface chemistry
Titanium
Transition metals
Two dimensional materials
Title Atomic defects in monolayer ordered double transition metal carbide (Mo2TiC2Tx) MXene and CO2 adsorption
URI https://www.proquest.com/docview/2387570341
Volume 8
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
link http://utb.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV3da9swEBdZymB7GFu3sXXd0MMeNow7R5K_HkNI6UbSwnAgb8GSrNkU7BI7MPof9r_aSZY_WMvY9mIcOSiR7-e70_l3dwh9VKmvOIslPOJx4DJOIjfijLsppzPCQxJI02NpfRlcbNi3rb-dTO5GrKVDw8_E7YN5Jf8jVRgDueos2X-QbD8pDMA5yBeOIGE4_pWM543OKXZk1nIyitKBn4a9KrjRjqmpCd6krA46OarRNsnQs3TTaF0UJN3zQhoPc12RpFiQ5KcOEay3oP3MK4XFFXFSWVf7m154971YcHjblTqiax135izaLKDuimYyVjdNX5dg1HpHZkZT9Wo_B3ulU1kK3VDEEA2-p3U1Ii8Wdb5vQ8E813T-a8eQxHvcKtgJ3Oq3KLr0bD6OaRDvt5hGGznpaKuGlmJXMGhH4vmeG_rE1tEej9noqFXv0RjFbKSrWdg2f7F2Hz7GD9oUj-qSrCJuhC40FMjBcnZsgcur3flmtdoly23yCB2RENy4KTqaL5Ovqz7gZzqcmBaL_V_vyuXS-Msw_T2nwHg6yXP0zAoXz1u8vUCTrDxGT0eFK4_RY0McFvVLlLcYxBaDuChxj0FsMYhbDOIBg9hgEFsM4k89Aj9jgz8MMMGAPzzg7xXanC-TxYVru3e4P8BINC7lAayYkyCNFA-DNFOe4txPKRWUqzQWwUwpocBllIykoZJM-PCNWIoZbOJ9SV-jaVmV2RuEFWM8yCLikxj2_6HedUcBVb6QlFOwOW_RaXfLdvbxrHcwcajLy7HZyZ8vv0NPBgyeommzP2TvwdNs-Acrw1_OoIZh
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=Atomic+defects+in+monolayer+ordered+double+transition+metal+carbide+%28Mo2TiC2Tx%29+MXene+and+CO2+adsorption&rft.jtitle=Journal+of+materials+chemistry.+C%2C+Materials+for+optical+and+electronic+devices&rft.au=Khaledialidusti%2C+Rasoul&rft.au=Mishra%2C+Abhishek+Kumar&rft.au=Afrooz+Barnoush&rft.date=2020-01-01&rft.pub=Royal+Society+of+Chemistry&rft.issn=2050-7526&rft.eissn=2050-7534&rft.volume=8&rft.issue=14&rft.spage=4771&rft.epage=4779&rft_id=info:doi/10.1039%2Fc9tc06046d&rft.externalDBID=NO_FULL_TEXT
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=2050-7526&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=2050-7526&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=2050-7526&client=summon