Home / Articles / Chirality induction in atomically thin CdTe nanostructures

Chirality induction in atomically thin CdTe nanostructures

0
Share
Cite this
GOST
 | 
Cite this
GOST
Kurtina D. A., Platonova M. Yu., Vasiliev R. B. Chirality induction in atomically thin CdTe nanostructures // Mendeleev Communications. 2026. Vol. 36. No. 4. pp. 484-486.
GOST all authors (up to 50)
Kurtina D. A., Platonova M. Yu., Vasiliev R. B. Chirality induction in atomically thin CdTe nanostructures // Mendeleev Communications. 2026. Vol. 36. No. 4. pp. 484-486.
RIS
 | 
Cite this
RIS
TY - JOUR
DO - 10.71267/mencom.7983
UR - https://mendcomm.colab.ws/publications/10.71267/mencom.7983
TI - Chirality induction in atomically thin CdTe nanostructures
T2 - Mendeleev Communications
AU - Kurtina, Daria A
AU - Platonova, Maria Yu
AU - Vasiliev, Roman Borisovich
PY - 2026
DA - 2026/06/04
PB - Mendeleev Communications
SP - 484-486
IS - 4
VL - 36
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors)
@article{2026_Kurtina,
author = {Daria A Kurtina and Maria Yu Platonova and Roman Borisovich Vasiliev},
title = {Chirality induction in atomically thin CdTe nanostructures},
journal = {Mendeleev Communications},
year = {2026},
volume = {36},
publisher = {Mendeleev Communications},
month = {Jun},
url = {https://mendcomm.colab.ws/publications/10.71267/mencom.7983},
number = {4},
pages = {484--486},
doi = {10.71267/mencom.7983}
}
MLA
Cite this
MLA
Kurtina, Daria A., et al. “Chirality induction in atomically thin CdTe nanostructures.” Mendeleev Communications, vol. 36, no. 4, Jun. 2026, pp. 484-486. https://mendcomm.colab.ws/publications/10.71267/mencom.7983.
Views / Visits
24 / 24

Keywords

2D semiconductors
cadmium chalcogenides
CdTe nanoplatelets
chirality
circular dichroism
colloidal synthesis
excitons
ligand exchange

Abstract

Chiral atomically thin CdTe nanostructures with thicknesses of 2 and 3 monolayers coated with enantiomerically pure N-acetyl-L-cysteine ligand were prepared by ligand exchange. Circular dichroism spectra demonstrate the Cotton effect for heavy-hole and light-hole excitons.

Funders

Russian Science Foundation
25-13-00416

References

1.
Chiral light–matter interactions in solution-processable semiconductors
VanOrman Z.A., Kitzmann W.R., Reponen A.M., Deshpande T., Jöbsis H.J., Feldmann S.
Nature Reviews Chemistry, 2025
2.
Nanophotonic Approaches for Chirality Sensing
Warning L.A., Miandashti A.R., McCarthy L.A., Zhang Q., Landes C.F., Link S.
ACS Nano, 2021
4.
Ligand-induced chirality and optical activity in semiconductor nanocrystals: theory and applications
Kuznetsova V., Gromova Y., Martinez-Carmona M., Purcell-Milton F., Ushakova E., Cherevkov S., Maslov V., Gun’ko Y.K.
Nanophotonics, 2020
7.
Chiral Induced Spin Selectivity
Bloom B.P., Paltiel Y., Naaman R., Waldeck D.H.
Chemical Reviews, 2024
8.
2D II–VI Semiconductor Nanoplatelets: From Material Synthesis to Optoelectronic Integration
Diroll B.T., Guzelturk B., Po H., Dabard C., Fu N., Makke L., Lhuillier E., Ithurria S.
Chemical Reviews, 2023
9.
Record High External Quantum Efficiency of 19.2% Achieved in Light‐Emitting Diodes of Colloidal Quantum Wells Enabled by Hot‐Injection Shell Growth
10.
A room temperature continuous-wave nanolaser using colloidal quantum wells
Yang Z., Pelton M., Fedin I., Talapin D.V., Waks E.
Nature Communications, 2017
11.
Highly Luminescent Gradient Alloy CdSe1–xSx Nanoplatelets with Reduced Reabsorption for White-Light Generation
Saidzhonov B.M., Zaytsev V.B., Eliseev A.A., Grishko A.Y., Vasiliev R.B.
ACS Photonics, 2020