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Recognition and order of multiple sidechains by metal-organic framework enhances the separation of hexane isomers.
Markad, Datta; Cook, Laurence J Kershaw; Pétuya, Rémi; Yan, Yong; Gilford, Oliver; Verma, Ajay; Mali, Bhupendra; Robertson, Craig M; Berry, Neil G; Darling, George R; Dyer, Matthew S; Antypov, Dmytro; Katsoulidis, Alexandros P; Rosseinsky, Matthew J.
Afiliação
  • Markad D; University of Liverpool, Department of Chemistry, INDIA.
  • Cook LJK; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Pétuya R; University of Liverpool, Department of Chemistry, SPAIN.
  • Yan Y; University of Liverpool, Department of Chemistry, CHINA.
  • Gilford O; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Verma A; University of Liverpool, Department of Chemistry, INDIA.
  • Mali B; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Robertson CM; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Berry NG; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Darling GR; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Dyer MS; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Antypov D; University of Liverpool, Department of Chemistry, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Katsoulidis AP; University of Liverpool, Department of Chemistry, 51 Oxford Street, MIF building, Liverpool, L7 3NY, Liverpool, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
  • Rosseinsky MJ; University of Liverpool, Department of Chemsitry, Donnan and Robert Robinson Laboratories, Grove Street, L69 7ZD, Liverpool, UNITED KINGDOM OF GREAT BRITAIN AND NORTHERN IRELAND.
Angew Chem Int Ed Engl ; : e202411960, 2024 Aug 21.
Article em En | MEDLINE | ID: mdl-39166719
ABSTRACT
Porous materials perform molecular sorting, separation and transformation by interaction between their framework structures and the substrates. Proteins also interact with molecules to effect chemical transformations, but rely on the precise sequence of the amino acid building units along a common polypeptide backbone to maximise their performance. Design strategies that positionally order sidechains over a defined porous framework to diversify the internal surface chemistry would enhance control of substrate processing. Here we show that different sidechains can be ordered over a metal-organic framework through recognition of their distinct chemistries during synthesis. The sidechains are recognised because each one forces the common building unit that defines the backbone of the framework into a different conformation in order to form the extended structure. The resulting sidechain ordering affords hexane isomer separation performance superior to that of the same framework decorated only with sidechains of a single kind. The separated molecules adopt distinct arrangements within the resulting modified pore geometry, reflecting their strongly differentiated environments precisely created by the ordered sidechains. The development of frameworks that recognise  and  order multiple sidechain functionality by conformational control offers tailoring of the internal surfaces within families of porous materials to direct interactions at the molecular level.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article