Unraveling the Emission Pathways in Copper Indium Sulfide Quantum Dots

Publication date

2021-11-23

Authors

Xia, ChenghuiISNI 0000000492960470
Tamarat, Philippe
Hou, Lei
Busatto, SerenaISNI 0000000493049021
Meeldijk, Johannes DISNI 0000000419468594
de Mello Donegá, C.ISNI 0000000390738326
Lounis, Brahim

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

taverne

Abstract

Semiconductor copper indium sulfide quantum dots are emerging as promising alternatives to cadmium-and lead-based chalcogenides in solar cells, luminescent solar concentrators, and deep-Tissue bioimaging due to their inherently lower toxicity and outstanding photoluminescence properties. However, the nature of their emission pathways remains a subject of debate. Using low-Temperature single quantum dot spectroscopy on core-shell copper indium sulfide nanocrystals, we observe two subpopulations of particles with distinct spectral features. The first class shows sharp resolution-limited emission lines that are attributed to zero-phonon recombination lines of a long-lived band-edge exciton. Such emission results from the perfect passivation of the copper indium sulfide core by the zinc sulfide shell and points to an inversion in the band-edge hole levels. The second class exhibits ultrabroad spectra regardless of the temperature, which is a signature of the extrinsic self-Trapping of the hole assisted by defects in imperfectly passivated quantum dots.

Keywords

core-shell nanocrystals, exciton, exciton self-Trapping, exciton-phonon coupling, fine structure, single dot spectroscopy, Taverne

Citation

Xia, C, Tamarat, P, Hou, L, Busatto, S, Meeldijk, J D, De Mello Donega, C & Lounis, B 2021, 'Unraveling the Emission Pathways in Copper Indium Sulfide Quantum Dots', ACS Nano, vol. 15, no. 11, pp. 17573-17581. https://doi.org/10.1021/acsnano.1c04909