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Geometrically Enhanced Thermoelectric Effects in Graphene Nanoconstrictions.
Harzheim, Achim; Spiece, Jean; Evangeli, Charalambos; McCann, Edward; Falko, Vladimir; Sheng, Yuewen; Warner, Jamie H; Briggs, G Andrew D; Mol, Jan A; Gehring, Pascal; Kolosov, Oleg V.
Afiliação
  • Harzheim A; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
  • Spiece J; Department of Physics , Lancaster University , Bailrigg, LA1 4YB , Lancaster , United Kingdom.
  • Evangeli C; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
  • McCann E; Department of Physics , Lancaster University , Bailrigg, LA1 4YB , Lancaster , United Kingdom.
  • Falko V; Department of Physics , Lancaster University , Bailrigg, LA1 4YB , Lancaster , United Kingdom.
  • Sheng Y; School of Physics and Astronomy , University of Manchester , Oxford Road , M13 9PL , Manchester , United Kingdom.
  • Warner JH; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
  • Briggs GAD; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
  • Mol JA; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
  • Gehring P; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
  • Kolosov OV; Department of Materials , University of Oxford , Parks Road , OX1 3PH , Oxford , United Kingdom.
Nano Lett ; 18(12): 7719-7725, 2018 12 12.
Article em En | MEDLINE | ID: mdl-30418781
ABSTRACT
The influence of nanostructuring and quantum confinement on the thermoelectric properties of materials has been extensively studied. While this has made possible multiple breakthroughs in the achievable figure of merit, classical confinement, and its effect on the local Seebeck coefficient has mostly been neglected, as has the Peltier effect in general due to the complexity of measuring small temperature gradients locally. Here we report that reducing the width of a graphene channel to 100 nm changes the Seebeck coefficient by orders of magnitude. Using a scanning thermal microscope allows us to probe the local temperature of electrically contacted graphene two-terminal devices or to locally heat the sample. We show that constrictions in mono- and bilayer graphene facilitate a spatially correlated gradient in the Seebeck and Peltier coefficient, as evidenced by the pronounced thermovoltage Vth and heating/cooling response Δ TPeltier, respectively. This geometry dependent effect, which has not been reported previously in 2D materials, has important implications for measurements of patterned nanostructures in graphene and points to novel solutions for effective thermal management in electronic graphene devices or concepts for single material thermocouples.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Nano Lett Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Reino Unido

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Nano Lett Ano de publicação: 2018 Tipo de documento: Article País de afiliação: Reino Unido