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Assembly, structure and thermoelectric properties of 1,1'-dialkynylferrocene 'hinges'.
Wilkinson, Luke A; Bennett, Troy L R; Grace, Iain M; Hamill, Joseph; Wang, Xintai; Au-Yong, Sophie; Ismael, Ali; Jarvis, Samuel P; Hou, Songjun; Albrecht, Tim; Cohen, Lesley F; Lambert, Colin; Robinson, Benjamin J; Long, Nicholas J.
Afiliação
  • Wilkinson LA; Department of Chemistry, Imperial College London, MSRH White City London W12 0BZ UK n.long@imperial.ac.uk.
  • Bennett TLR; Department of Chemistry, University of York Heslington York YO10 5DD UK.
  • Grace IM; Department of Chemistry, Imperial College London, MSRH White City London W12 0BZ UK n.long@imperial.ac.uk.
  • Hamill J; Physics Department, Lancaster University Lancaster LA1 4YB UK.
  • Wang X; Department of Chemistry, Birmingham University Edgbaston Birmingham B15 2TT UK.
  • Au-Yong S; Physics Department, Lancaster University Lancaster LA1 4YB UK.
  • Ismael A; The Blackett Laboratory, Imperial College London South Kensington Campus London SW7 2AZ UK.
  • Jarvis SP; Physics Department, Lancaster University Lancaster LA1 4YB UK.
  • Hou S; Physics Department, Lancaster University Lancaster LA1 4YB UK.
  • Albrecht T; Physics Department, Lancaster University Lancaster LA1 4YB UK.
  • Cohen LF; Physics Department, Lancaster University Lancaster LA1 4YB UK.
  • Lambert C; Department of Chemistry, Birmingham University Edgbaston Birmingham B15 2TT UK.
  • Robinson BJ; The Blackett Laboratory, Imperial College London South Kensington Campus London SW7 2AZ UK.
  • Long NJ; Physics Department, Lancaster University Lancaster LA1 4YB UK.
Chem Sci ; 13(28): 8380-8387, 2022 Jul 20.
Article em En | MEDLINE | ID: mdl-35919728
ABSTRACT
Dialkynylferrocenes exhibit attractive electronic and rotational features that make them ideal candidates for use in molecular electronic applications. However previous works have primarily focussed on single-molecule studies, with limited opportunities to translate these features into devices. In this report, we utilise a variety of techniques to examine both the geometric and electronic structure of a range of 1,1'-dialkynylferrocene molecules, as either single-molecules, or as self-assembled monolayers. Previous single molecule studies have shown that similar molecules can adopt an 'open' conformation. However, in this work, DFT calculations, STM-BJ experiments and AFM imaging reveal that these molecules prefer to occupy a 'hairpin' conformation, where both alkynes point towards the metal surface. Interestingly we find that only one of the terminal anchor groups binds to the surface, though both the presence and nature of the second alkyne affect the thermoelectric properties of these systems. First, the secondary alkyne acts to affect the position of the frontier molecular orbitals, leading to increases in the Seebeck coefficient. Secondly, theoretical calculations suggested that rotating the secondary alkyne away from the surface acts to modulate thermoelectric properties. This work represents the first of its kind to examine the assembly of dialkynylferrocenes, providing valuable information about both their structure and electronic properties, as well as unveiling new ways in which both of these properties can be controlled.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article