Atomistic Origin of Photoluminescence Quenching in Colloidal MoS2 and WS2 Nanoplatelets

Fuente: arXiv
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Main Authors: Kumar, Surender, Fröhlich, Markus, Velja, Stefan, Kögel, Marco, Strolka, Onno, Niebur, André, Ginzburg, Samuell, Ramzan, Muhammad Sufyan, Meyer, Jannik C., Lauth, Jannika, Cocchi, Caterina
Format: Preprint
Published: 2025
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author Kumar, Surender
Fröhlich, Markus
Velja, Stefan
Kögel, Marco
Strolka, Onno
Niebur, André
Ginzburg, Samuell
Ramzan, Muhammad Sufyan
Meyer, Jannik C.
Lauth, Jannika
Cocchi, Caterina
author_facet Kumar, Surender
Fröhlich, Markus
Velja, Stefan
Kögel, Marco
Strolka, Onno
Niebur, André
Ginzburg, Samuell
Ramzan, Muhammad Sufyan
Meyer, Jannik C.
Lauth, Jannika
Cocchi, Caterina
contents Large chemical tunability and strong light-matter interactions make colloidal transition metal dichalcogenide (TMD) nanostructures particularly suitable for light-emitting applications. However, ultrafast exciton decay and quenched photoluminescence (PL) limit their potential. Combining femtosecond transient absorption spectroscopy with first-principles calculations on MoS2 and WS2 nanoplatelets, we reveal that the observed sub-picosecond exciton decay originates from edge-located optically bright hole traps. These intrinsic trap states stem from the metal d-orbitals and persist even when the sulfur-terminated edges are hydrogen-passivated. Notably, WS2 nanostructures show more localized and optically active edge states than their MoS2 counterparts, and zigzag edges exhibit a higher trap density than armchair edges. The nanoplatelet size dictates the competition between ultrafast edge-trapping and slower core-exciton recombination, and the states responsible for exciton quenching enhance catalytic activity. Our work represents an important step forward in understanding exciton quenching in TMD nanoplatelets and stimulates additional research to refine physicochemical protocols for enhanced PL.
format Preprint
id arxiv_https___arxiv_org_abs_2511_19077
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Atomistic Origin of Photoluminescence Quenching in Colloidal MoS2 and WS2 Nanoplatelets
Kumar, Surender
Fröhlich, Markus
Velja, Stefan
Kögel, Marco
Strolka, Onno
Niebur, André
Ginzburg, Samuell
Ramzan, Muhammad Sufyan
Meyer, Jannik C.
Lauth, Jannika
Cocchi, Caterina
Materials Science
Large chemical tunability and strong light-matter interactions make colloidal transition metal dichalcogenide (TMD) nanostructures particularly suitable for light-emitting applications. However, ultrafast exciton decay and quenched photoluminescence (PL) limit their potential. Combining femtosecond transient absorption spectroscopy with first-principles calculations on MoS2 and WS2 nanoplatelets, we reveal that the observed sub-picosecond exciton decay originates from edge-located optically bright hole traps. These intrinsic trap states stem from the metal d-orbitals and persist even when the sulfur-terminated edges are hydrogen-passivated. Notably, WS2 nanostructures show more localized and optically active edge states than their MoS2 counterparts, and zigzag edges exhibit a higher trap density than armchair edges. The nanoplatelet size dictates the competition between ultrafast edge-trapping and slower core-exciton recombination, and the states responsible for exciton quenching enhance catalytic activity. Our work represents an important step forward in understanding exciton quenching in TMD nanoplatelets and stimulates additional research to refine physicochemical protocols for enhanced PL.
title Atomistic Origin of Photoluminescence Quenching in Colloidal MoS2 and WS2 Nanoplatelets
topic Materials Science
url https://arxiv.org/abs/2511.19077