Cargando…

Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids

[Image: see text] Ligand-induced chirality in semiconducting nanocrystals has been the subject of extensive study in the past few years and shows potential applications in optics and biology. Yet, the origin of the chiroptical effect in semiconductor nanoparticles is still not fully understood. Here...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Guangmin, Fei, Xuening, Liu, Hongfei, Gao, Jing, Nie, Jiayang, Wang, Yuanbo, Tian, Zhaodong, He, Caicai, Wang, Jiang-Long, Ji, Chao, Oron, Dan, Yang, Gaoling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7467813/
https://www.ncbi.nlm.nih.gov/pubmed/32298573
http://dx.doi.org/10.1021/acsnano.9b09101
_version_ 1783578089726410752
author Li, Guangmin
Fei, Xuening
Liu, Hongfei
Gao, Jing
Nie, Jiayang
Wang, Yuanbo
Tian, Zhaodong
He, Caicai
Wang, Jiang-Long
Ji, Chao
Oron, Dan
Yang, Gaoling
author_facet Li, Guangmin
Fei, Xuening
Liu, Hongfei
Gao, Jing
Nie, Jiayang
Wang, Yuanbo
Tian, Zhaodong
He, Caicai
Wang, Jiang-Long
Ji, Chao
Oron, Dan
Yang, Gaoling
author_sort Li, Guangmin
collection PubMed
description [Image: see text] Ligand-induced chirality in semiconducting nanocrystals has been the subject of extensive study in the past few years and shows potential applications in optics and biology. Yet, the origin of the chiroptical effect in semiconductor nanoparticles is still not fully understood. Here, we examine the effect of the interaction with amino acids on both the fluorescence and the optical activity of chiral semiconductor quantum dots (QDs). A significant fluorescence enhancement is observed for l/d-Cys-CdTe QDs upon interaction with all the tested amino acids, indicating suppression of nonradiative pathways as well as the passivation of surface trap sites brought via the interaction of the amino group with the CdTe QDs’ surface. Heterochiral amino acids are shown to weaken the circular dichroism (CD) signal, which may be attributed to a different binding configuration of cysteine molecules on the QDs’ surface. Furthermore, a red shift of both CD and fluorescence signals in l/d-Cys-CdTe QDs is only observed upon adding cysteine, while other tested amino acids do not exhibit such an effect. We speculate that the thiol group induces orbital hybridization of the highest occupied molecular orbital (HOMOs) of cysteine and the valence band of CdTe QDs, leading to the decrease of the energy band gap and a concomitant red shift of CD and fluorescence spectra. This is further verified by density functional theory calculations. Both the experimental and theoretical findings indicate that the addition of ligands that do not “directly” interact with the valence band (VB) of the QD (noncysteine moieties) changes the QD photophysical properties, as it probably modifies the way cysteine is bound to the surface. Hence, we conclude that it is not only the chemistry of the amino acid ligand that affects both CD and PL but also the exact geometry of binding that modifies these properties. Understanding the relationship between the QD’s surface and chiral amino acid thus provides an additional perspective on the fundamental origin of induced chiroptical effects in semiconductor nanoparticles, potentially enabling us to optimize the design of chiral semiconductor QDs for chiroptic applications.
format Online
Article
Text
id pubmed-7467813
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-74678132020-09-03 Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids Li, Guangmin Fei, Xuening Liu, Hongfei Gao, Jing Nie, Jiayang Wang, Yuanbo Tian, Zhaodong He, Caicai Wang, Jiang-Long Ji, Chao Oron, Dan Yang, Gaoling ACS Nano [Image: see text] Ligand-induced chirality in semiconducting nanocrystals has been the subject of extensive study in the past few years and shows potential applications in optics and biology. Yet, the origin of the chiroptical effect in semiconductor nanoparticles is still not fully understood. Here, we examine the effect of the interaction with amino acids on both the fluorescence and the optical activity of chiral semiconductor quantum dots (QDs). A significant fluorescence enhancement is observed for l/d-Cys-CdTe QDs upon interaction with all the tested amino acids, indicating suppression of nonradiative pathways as well as the passivation of surface trap sites brought via the interaction of the amino group with the CdTe QDs’ surface. Heterochiral amino acids are shown to weaken the circular dichroism (CD) signal, which may be attributed to a different binding configuration of cysteine molecules on the QDs’ surface. Furthermore, a red shift of both CD and fluorescence signals in l/d-Cys-CdTe QDs is only observed upon adding cysteine, while other tested amino acids do not exhibit such an effect. We speculate that the thiol group induces orbital hybridization of the highest occupied molecular orbital (HOMOs) of cysteine and the valence band of CdTe QDs, leading to the decrease of the energy band gap and a concomitant red shift of CD and fluorescence spectra. This is further verified by density functional theory calculations. Both the experimental and theoretical findings indicate that the addition of ligands that do not “directly” interact with the valence band (VB) of the QD (noncysteine moieties) changes the QD photophysical properties, as it probably modifies the way cysteine is bound to the surface. Hence, we conclude that it is not only the chemistry of the amino acid ligand that affects both CD and PL but also the exact geometry of binding that modifies these properties. Understanding the relationship between the QD’s surface and chiral amino acid thus provides an additional perspective on the fundamental origin of induced chiroptical effects in semiconductor nanoparticles, potentially enabling us to optimize the design of chiral semiconductor QDs for chiroptic applications. American Chemical Society 2020-04-16 2020-04-28 /pmc/articles/PMC7467813/ /pubmed/32298573 http://dx.doi.org/10.1021/acsnano.9b09101 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Li, Guangmin
Fei, Xuening
Liu, Hongfei
Gao, Jing
Nie, Jiayang
Wang, Yuanbo
Tian, Zhaodong
He, Caicai
Wang, Jiang-Long
Ji, Chao
Oron, Dan
Yang, Gaoling
Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids
title Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids
title_full Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids
title_fullStr Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids
title_full_unstemmed Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids
title_short Fluorescence and Optical Activity of Chiral CdTe Quantum Dots in Their Interaction with Amino Acids
title_sort fluorescence and optical activity of chiral cdte quantum dots in their interaction with amino acids
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7467813/
https://www.ncbi.nlm.nih.gov/pubmed/32298573
http://dx.doi.org/10.1021/acsnano.9b09101
work_keys_str_mv AT liguangmin fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT feixuening fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT liuhongfei fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT gaojing fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT niejiayang fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT wangyuanbo fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT tianzhaodong fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT hecaicai fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT wangjianglong fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT jichao fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT orondan fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids
AT yanggaoling fluorescenceandopticalactivityofchiralcdtequantumdotsintheirinteractionwithaminoacids