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volume 7 issue 1 publication number 96

A stoichiometric terbium-europium dyad molecular thermometer: energy transfer properties

Publication typeJournal Article
Publication date2018-11-28
scimago Q1
wos Q1
SJR5.018
CiteScore30.1
Impact factor23.4
ISSN20477538, 20955545
Electronic, Optical and Magnetic Materials
Atomic and Molecular Physics, and Optics
Abstract
The optical thermometer has shown great promise for use in the fields of aeronautical engineering, environmental monitoring and medical diagnosis. Self-referencing lanthanide thermo-probes distinguish themselves because of their accuracy, calibration, photostability, and temporal dimension of signal. However, the use of conventional lanthanide-doped materials is limited by their poor reproducibility, random distance between energy transfer pairs and interference by energy migration, thereby restricting their utility. Herein, a strategy for synthesizing hetero-dinuclear complexes that comprise chemically similar lanthanides is introduced in which a pair of thermosensitive dinuclear complexes, cycTb-phEu and cycEu-phTb, were synthesized. Their structures were geometrically optimized with an internuclear distance of approximately 10.6Å. The sensitive linear temperature-dependent luminescent intensity ratios of europium and terbium emission over a wide temperature range (50–298K and 10–200K, respectively) and their temporal dimension responses indicate that both dinuclear complexes can act as excellent self-referencing thermometers. The energy transfer from Tb3+ to Eu3+ is thermally activated, with the most important pathway involving the 7F1 Eu3+ J-multiplet at room temperature. The energy transfer from the antenna to Eu3+ was simulated, and it was found that the most important ligand contributions to the rate come from transfers to the Eu3+ upper states rather than direct ligand–metal transfer to 5D1 or 5D0. As the first molecular-based thermometer with clear validation of the metal ratio and a fixed distance between the metal pairs, these dinuclear complexes can be used as new materials for temperature sensing and can provide a new platform for understanding the energy transfer between lanthanide ions. A metal-organic complex developed by researchers in China and Australia could greatly improve the accuracy of molecular-scale luminescent thermometers. The ability to measure temperatures in nano-sized spaces, such as within the human body or on microchips, holds great appeal. This promising approach uses molecular frameworks containing lanthanide ions, which display luminescence that is strongly dependent on their temperature. Ka-Leung Wong at Hong Kong Baptist University and co-workers synthesized two complexes containing a single pair of terbium and europium. By smart design and architecting at molecular level, the team fixed two ions with different emission colors at a distance of 1.06 nm, enabling effective energy transfer between the two single emitters. The luminescence from each ion responds differently as the temperature changes. Hence accurate temperature measurement is achieved via comparison of the luminescence from each emitter.
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GOST |
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GOST Copy
Bao G. et al. A stoichiometric terbium-europium dyad molecular thermometer: energy transfer properties // Light: Science and Applications. 2018. Vol. 7. No. 1. 96
GOST all authors (up to 50) Copy
Bao G., Wong K., Jin D., Tanner P. A stoichiometric terbium-europium dyad molecular thermometer: energy transfer properties // Light: Science and Applications. 2018. Vol. 7. No. 1. 96
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1038/s41377-018-0097-7
UR - https://doi.org/10.1038/s41377-018-0097-7
TI - A stoichiometric terbium-europium dyad molecular thermometer: energy transfer properties
T2 - Light: Science and Applications
AU - Bao, Guochen
AU - Wong, Ka-Leung
AU - Jin, Dayong
AU - Tanner, Peter
PY - 2018
DA - 2018/11/28
PB - Springer Nature
IS - 1
VL - 7
PMID - 30510692
SN - 2047-7538
SN - 2095-5545
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2018_Bao,
author = {Guochen Bao and Ka-Leung Wong and Dayong Jin and Peter Tanner},
title = {A stoichiometric terbium-europium dyad molecular thermometer: energy transfer properties},
journal = {Light: Science and Applications},
year = {2018},
volume = {7},
publisher = {Springer Nature},
month = {nov},
url = {https://doi.org/10.1038/s41377-018-0097-7},
number = {1},
pages = {96},
doi = {10.1038/s41377-018-0097-7}
}