Cargando…

Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects

In situ metal-templated (hydrazone) condensation also called subcomponent self-assembly of 4,6-dihydrazino-pyrimidine, o-vanillin and dysprosium ions resulted in the formation of discrete hexa- or dodecanuclear metallosupramolecular Dy(6)(L)(6) or Dy(12)(L)(8) aggregates resulting from second-order...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Xiao-Lei, Zhao, Lang, Wu, Jianfeng, Shi, Wei, Struch, Niklas, Lützen, Arne, Powell, Annie K., Cheng, Peng, Tang, Jinkui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9430530/
https://www.ncbi.nlm.nih.gov/pubmed/36128245
http://dx.doi.org/10.1039/d2sc03156f
_version_ 1784779795973799936
author Li, Xiao-Lei
Zhao, Lang
Wu, Jianfeng
Shi, Wei
Struch, Niklas
Lützen, Arne
Powell, Annie K.
Cheng, Peng
Tang, Jinkui
author_facet Li, Xiao-Lei
Zhao, Lang
Wu, Jianfeng
Shi, Wei
Struch, Niklas
Lützen, Arne
Powell, Annie K.
Cheng, Peng
Tang, Jinkui
author_sort Li, Xiao-Lei
collection PubMed
description In situ metal-templated (hydrazone) condensation also called subcomponent self-assembly of 4,6-dihydrazino-pyrimidine, o-vanillin and dysprosium ions resulted in the formation of discrete hexa- or dodecanuclear metallosupramolecular Dy(6)(L)(6) or Dy(12)(L)(8) aggregates resulting from second-order template effects of the base and the lanthanide counterions used in these processes. XRD analysis revealed unique circular helical or tetragonal bipyramid architectures in which the bis(hydrazone) ligand L adopts different conformations and shows remarkable differences in its mode of metal coordination. While a molecule of trimethylamine acts as a secondary template that fills the void of the Dy(6)(L)(6) assembly, sodium ions take on this role for the formation of heterobimetallic Dy(12)(L)(8) by occupying vacant coordination sites, thus demonstrating that these processes can be steered in different directions upon subtle changes of reaction conditions. Furthermore, Dy(6)(L)(6) shows an interesting spin-relaxation energy barrier of 435 K, which is amongst the largest values within multinuclear lanthanide single-molecular magnets.
format Online
Article
Text
id pubmed-9430530
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-94305302022-09-19 Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects Li, Xiao-Lei Zhao, Lang Wu, Jianfeng Shi, Wei Struch, Niklas Lützen, Arne Powell, Annie K. Cheng, Peng Tang, Jinkui Chem Sci Chemistry In situ metal-templated (hydrazone) condensation also called subcomponent self-assembly of 4,6-dihydrazino-pyrimidine, o-vanillin and dysprosium ions resulted in the formation of discrete hexa- or dodecanuclear metallosupramolecular Dy(6)(L)(6) or Dy(12)(L)(8) aggregates resulting from second-order template effects of the base and the lanthanide counterions used in these processes. XRD analysis revealed unique circular helical or tetragonal bipyramid architectures in which the bis(hydrazone) ligand L adopts different conformations and shows remarkable differences in its mode of metal coordination. While a molecule of trimethylamine acts as a secondary template that fills the void of the Dy(6)(L)(6) assembly, sodium ions take on this role for the formation of heterobimetallic Dy(12)(L)(8) by occupying vacant coordination sites, thus demonstrating that these processes can be steered in different directions upon subtle changes of reaction conditions. Furthermore, Dy(6)(L)(6) shows an interesting spin-relaxation energy barrier of 435 K, which is amongst the largest values within multinuclear lanthanide single-molecular magnets. The Royal Society of Chemistry 2022-07-22 /pmc/articles/PMC9430530/ /pubmed/36128245 http://dx.doi.org/10.1039/d2sc03156f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Li, Xiao-Lei
Zhao, Lang
Wu, Jianfeng
Shi, Wei
Struch, Niklas
Lützen, Arne
Powell, Annie K.
Cheng, Peng
Tang, Jinkui
Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects
title Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects
title_full Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects
title_fullStr Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects
title_full_unstemmed Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects
title_short Subcomponent self-assembly of circular helical Dy(6)(L)(6) and bipyramid Dy(12)(L)(8) architectures directed via second-order template effects
title_sort subcomponent self-assembly of circular helical dy(6)(l)(6) and bipyramid dy(12)(l)(8) architectures directed via second-order template effects
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9430530/
https://www.ncbi.nlm.nih.gov/pubmed/36128245
http://dx.doi.org/10.1039/d2sc03156f
work_keys_str_mv AT lixiaolei subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT zhaolang subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT wujianfeng subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT shiwei subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT struchniklas subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT lutzenarne subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT powellanniek subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT chengpeng subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects
AT tangjinkui subcomponentselfassemblyofcircularhelicaldy6l6andbipyramiddy12l8architecturesdirectedviasecondordertemplateeffects