Ajou University repository

Cationic Molecular Metal Chalcogenide Ligand-Passivated Colloidal Quantum Dots and Their Application to Suppressed Dark-Current Near-Infrared Photodetectors
Citations

SCOPUS

3

Citation Export

Publication Year
2023-06-09
Publisher
John Wiley and Sons Inc
Citation
Advanced Materials Technologies, Vol.8
Keyword
metal chalcogenide ligandsNIR photodetectorsquantum dotssurface ligands
Mesh Keyword
CationicsColloidal quantum dotsMetal chalcogenideMetal chalcogenide ligandMolecular metalsNear infrared photodetectorsNIR photodetectorPbS quantum dotsQuantum dotSurface ligands
All Science Classification Codes (ASJC)
Materials Science (all)Mechanics of MaterialsIndustrial and Manufacturing Engineering
Abstract
The surface of colloidal-type quantum dots (QDs) is protected with surfactants to maintain their nanoscale size and dispersion in various solvents. Such protection is advantageous to the processability of the dots, but the surfactants also act as insulators, thereby adversely affecting the electrical properties of the resulting devices. Anion-type molecular metal chalcogenide complexes (MCCs) have been developed as an alternative to these surfactants. However, anionic ligands limit the charges of the resulting QDs to negative values; thus, additional processes are required to compensate for these charges. Herein, this work prepares cationic-type dimetal diselenium perchlorate MCCs (M2Se2(ClO4)2, M = Mn, Zn, and Sn) and applies them to stabilize colloidal QDs. The resulting M2Se2-PbS QDs are then used to fabricate near-infrared photodetectors (NIR-PDs). The devices exhibit remarkably suppressed dark current densities (JD) of as low as 4.92 × 10−10 A cm−2 when compared with PDs based on 1,2 ethandithiol-PbS (EDT-PbS) (JD = 1.41 × 10−8 A cm−2). In addition, the devices exhibit a high responsivity of 0.07 A W−1 in response to 950 nm NIR light signals, as well as an excellent specific detectivity of 5.66 × 1012 Jones at 950 nm. Finally, this work fabricates hybrid-type QD films using cationic and anionic MCC-PbS QDs and obtains a high external quantum efficiency (EQE) of 13.1%.
ISSN
2365-709X
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33322
DOI
https://doi.org/10.1002/admt.202201864
Fulltext

Type
Article
Funding
This study was supported by the National Research Foundation of Korea (NRF) under the Ministry of Science, ICT & Future Planning (Basic Science Research Program No. 2021R1A5A6002853, 2020R1A2C1004943, 2022M3H4A1A03076093, and 2021M3H4A3A01062960), Republic of Korea. This research was also supported by a grant from the Priority Research Centers Program (2019R1A6A1A11051471) funded by the NRF, and also supported by the NRF funded by the Korean government (Ministry of Science and ICT) (NRF\u20102020M3H4A3081822).
Show full item record

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

 Heo, Junseok Image
Heo, Junseok허준석
Department of Intelligence Semiconductor Engineering
Read More

Total Views & Downloads

File Download

  • There are no files associated with this item.