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Effects of Connectivity Isomerization on Electron Transport Through Thiophene Heterocyclic Molecular Junction.

Authors :
Guo HY
Pei LQ
Cai ZY
Sun N
Zheng JF
Shao Y
Wang YH
Wu DY
Jin S
Zhou XS
Source :
Langmuir : the ACS journal of surfaces and colloids [Langmuir] 2024 May 07; Vol. 40 (18), pp. 9717-9724. Date of Electronic Publication: 2024 Apr 26.
Publication Year :
2024

Abstract

Connectivity isomerization of the same aromatic molecular core with different substitution positions profoundly affects electron transport pathways and single-molecule conductance. Herein, we designed and synthesized all connectivity isomers of a thiophene ( TP ) aromatic ring substituted by two dihydrobenzo[b]thiophene ( BT ) groups with ethynyl spacers ( m , n -TP-BT, ( m , n = 2,3; 2,4; 2,5; 3,4)), to systematically probe how connectivity contributes to single-molecule conductance. Single-molecule conductance measurements using a scanning tunneling microscopy break junction (STM-BJ) technique show ∼12-fold change in conductance values, which follow an order of 10 <superscript>-4.83</superscript> G <subscript>0</subscript> ( 2,4-TP-BT ) < 10 <superscript>-4.78</superscript> G <subscript>0</subscript> ( 3,4-TP-BT ) < 10 <superscript>-4.06</superscript> G <subscript>0</subscript> ( 2,3-TP-BT ) < 10 <superscript>-3.75</superscript> G <subscript>0</subscript> ( 2,5-TP-BT ). Electronic structure analysis and theoretical simulations show that the connectivity isomerization significantly changes electron delocalization and HOMO-LUMO energy gaps. Moreover, the connectivity-dependent molecular structures lead to different quantum interference (QI) effects in electron transport, e.g., a strong destructive QI near E = E <subscript>F</subscript> leads the smallest conductance value for 2,4-TP-BT . This work proves a clear relationship between the connectivity isomerization and single-molecule conductance of thiophene heterocyclic molecular junctions for the future design of molecular devices.

Details

Language :
English
ISSN :
1520-5827
Volume :
40
Issue :
18
Database :
MEDLINE
Journal :
Langmuir : the ACS journal of surfaces and colloids
Publication Type :
Academic Journal
Accession number :
38712354
Full Text :
https://doi.org/10.1021/acs.langmuir.4c00678