Design of Self-Assembled Monolayer in Tungsten Diselenide Bilayer for Exciton Dissociation
Noki Lee
1, 2, 3, 4
,
Jeongwon Lee
5, 6, 7, 8
,
Jeong Won Lee
7, 8
,
Sehoon Oh
1, 2, 3, 4
,
Ryong‐Gyu Lee
5, 6, 7, 8
,
Hyeonwoo Yeo
5, 6, 7, 8
,
Gham Hur
5, 6, 7, 8
,
Jaichan Lee
1, 2, 3, 4
1
School of Advanced Materials Science and Engineering
3
School of Advanced Materials Science and Engineering, Suwon, Republic of Korea
|
5
School of Electrical Engineering
7
School of Electrical Engineering, Daejeon, Republic of Korea
|
Publication type: Journal Article
Publication date: 2025-03-06
scimago Q1
wos Q1
SJR: 4.497
CiteScore: 24.2
Impact factor: 16.0
ISSN: 19360851, 1936086X
Abstract
Transition metal dichalcogenides (TMDs) have emerged as promising candidates for next-generation self-powered photodetectors due to their distinct optoelectronic properties, including strong light-matter interactions. However, their high exciton binding energies impede efficient exciton dissociation, hindering viable photodetector applications. This study, based on first-principles calculations, introduces a design approach featured by the asymmetrically enclosed structure of the TMD bilayer, i.e., two different self-assembled monolayers (SAMs) asymmetrically attached to each side of a tungsten diselenide bilayer by varying electron-donating and electron-withdrawing groups in SAMs. Compared to the electron-donating and electron-withdrawing tendencies, we demonstrate that the surface work function of the SAM is a crucial macroscopic parameter in fine-tuning the band offset without trap formation with a large degree of freedom. Optimizing the work function achieves trap-free exciton dissociation, establishing a type-II band alignment and a sufficient built-in electric field within the bilayer. This design approach offers not only a design strategy for two-dimensional (2D) self-powered photodetectors but also a guide to interface engineering of TMDs utilizing SAMs for integration into low-power applications.
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Lee N. et al. Design of Self-Assembled Monolayer in Tungsten Diselenide Bilayer for Exciton Dissociation // ACS Nano. 2025. Vol. 19. No. 10. pp. 9779-9787.
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Lee N., Lee J., Lee J. W., Oh S., Lee R., Yeo H., Hur G., Lee J. Design of Self-Assembled Monolayer in Tungsten Diselenide Bilayer for Exciton Dissociation // ACS Nano. 2025. Vol. 19. No. 10. pp. 9779-9787.
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TY - JOUR
DO - 10.1021/acsnano.4c09000
UR - https://pubs.acs.org/doi/10.1021/acsnano.4c09000
TI - Design of Self-Assembled Monolayer in Tungsten Diselenide Bilayer for Exciton Dissociation
T2 - ACS Nano
AU - Lee, Noki
AU - Lee, Jeongwon
AU - Lee, Jeong Won
AU - Oh, Sehoon
AU - Lee, Ryong‐Gyu
AU - Yeo, Hyeonwoo
AU - Hur, Gham
AU - Lee, Jaichan
PY - 2025
DA - 2025/03/06
PB - American Chemical Society (ACS)
SP - 9779-9787
IS - 10
VL - 19
SN - 1936-0851
SN - 1936-086X
ER -
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@article{2025_Lee,
author = {Noki Lee and Jeongwon Lee and Jeong Won Lee and Sehoon Oh and Ryong‐Gyu Lee and Hyeonwoo Yeo and Gham Hur and Jaichan Lee},
title = {Design of Self-Assembled Monolayer in Tungsten Diselenide Bilayer for Exciton Dissociation},
journal = {ACS Nano},
year = {2025},
volume = {19},
publisher = {American Chemical Society (ACS)},
month = {mar},
url = {https://pubs.acs.org/doi/10.1021/acsnano.4c09000},
number = {10},
pages = {9779--9787},
doi = {10.1021/acsnano.4c09000}
}
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Lee, Noki, et al. “Design of Self-Assembled Monolayer in Tungsten Diselenide Bilayer for Exciton Dissociation.” ACS Nano, vol. 19, no. 10, Mar. 2025, pp. 9779-9787. https://pubs.acs.org/doi/10.1021/acsnano.4c09000.