Cargando…

Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion

Great attention is being increasingly paid to photothermal conversion in the near-infrared (NIR)-II window (1000–1350 nm), where deeper tissue penetration is favored. To date, only a limited number of organic photothermal polymers and relevant theory have been exploited to direct the molecular desig...

Descripción completa

Detalles Bibliográficos
Autores principales: He, Yonglin, Liao, Hailiang, Lyu, Shanzhi, Xu, Xiao-Qi, Li, Zhengke, McCulloch, Iain, Yue, Wan, Wang, Yapei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179590/
https://www.ncbi.nlm.nih.gov/pubmed/34163755
http://dx.doi.org/10.1039/d1sc00060h
_version_ 1783703816836743168
author He, Yonglin
Liao, Hailiang
Lyu, Shanzhi
Xu, Xiao-Qi
Li, Zhengke
McCulloch, Iain
Yue, Wan
Wang, Yapei
author_facet He, Yonglin
Liao, Hailiang
Lyu, Shanzhi
Xu, Xiao-Qi
Li, Zhengke
McCulloch, Iain
Yue, Wan
Wang, Yapei
author_sort He, Yonglin
collection PubMed
description Great attention is being increasingly paid to photothermal conversion in the near-infrared (NIR)-II window (1000–1350 nm), where deeper tissue penetration is favored. To date, only a limited number of organic photothermal polymers and relevant theory have been exploited to direct the molecular design of polymers with highly efficient photothermal conversion, specifically in the NIR-II window. This work proposes a fused backbone structure locked via an intramolecular hydrogen bonding interaction and double bond, which favors molecular planarity and rigidity in the ground state and molecular flexibility in the excited state. Following this proposal, a particular class of NIR-II photothermal polymers are prepared. Their remarkable photothermal conversion efficiency is in good agreement with our strategy of coupling polymeric rigidity and flexibility, which accounts for the improved light absorption on going from the ground state to the excited state and nonradiative emission on going from the excited state to the ground state. It is envisioned that such a concept of coupling polymeric rigidity and flexibility will offer great inspiration for developing NIR-II photothermal polymers with the use of other chromophores.
format Online
Article
Text
id pubmed-8179590
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-81795902021-06-22 Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion He, Yonglin Liao, Hailiang Lyu, Shanzhi Xu, Xiao-Qi Li, Zhengke McCulloch, Iain Yue, Wan Wang, Yapei Chem Sci Chemistry Great attention is being increasingly paid to photothermal conversion in the near-infrared (NIR)-II window (1000–1350 nm), where deeper tissue penetration is favored. To date, only a limited number of organic photothermal polymers and relevant theory have been exploited to direct the molecular design of polymers with highly efficient photothermal conversion, specifically in the NIR-II window. This work proposes a fused backbone structure locked via an intramolecular hydrogen bonding interaction and double bond, which favors molecular planarity and rigidity in the ground state and molecular flexibility in the excited state. Following this proposal, a particular class of NIR-II photothermal polymers are prepared. Their remarkable photothermal conversion efficiency is in good agreement with our strategy of coupling polymeric rigidity and flexibility, which accounts for the improved light absorption on going from the ground state to the excited state and nonradiative emission on going from the excited state to the ground state. It is envisioned that such a concept of coupling polymeric rigidity and flexibility will offer great inspiration for developing NIR-II photothermal polymers with the use of other chromophores. The Royal Society of Chemistry 2021-02-17 /pmc/articles/PMC8179590/ /pubmed/34163755 http://dx.doi.org/10.1039/d1sc00060h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
He, Yonglin
Liao, Hailiang
Lyu, Shanzhi
Xu, Xiao-Qi
Li, Zhengke
McCulloch, Iain
Yue, Wan
Wang, Yapei
Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion
title Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion
title_full Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion
title_fullStr Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion
title_full_unstemmed Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion
title_short Coupling molecular rigidity and flexibility on fused backbones for NIR-II photothermal conversion
title_sort coupling molecular rigidity and flexibility on fused backbones for nir-ii photothermal conversion
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179590/
https://www.ncbi.nlm.nih.gov/pubmed/34163755
http://dx.doi.org/10.1039/d1sc00060h
work_keys_str_mv AT heyonglin couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT liaohailiang couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT lyushanzhi couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT xuxiaoqi couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT lizhengke couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT mccullochiain couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT yuewan couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion
AT wangyapei couplingmolecularrigidityandflexibilityonfusedbackbonesforniriiphotothermalconversion