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Harnessing Thermoelectric Puddles via the Stacking Order and Electronic Screening in Graphene

  • Mali Zhao
  • , Dohyun Kim
  • , Yongjoon Lee
  • , Ning Ling
  • , Shoujun Zheng
  • , Young Hee Lee
  • , Heejun Yang
  • Sungkyunkwan University
  • Korea Advanced Institute of Science and Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Thermoelectricity has been investigated mostly on the macroscopic scale despite the fact that its origin is linked to the local electronic band structure of materials. While the role of thermopower from microscopic structures (e.g., surfaces or grain boundaries) increases for emerging thermoelectric materials, manipulating thermoelectric puddles, spatially varying levels of thermoelectric power on the nanometer scale, remains unexplored. Here, we illustrate thermoelectric puddles that can be harnessed via the stacking order and electronic screening in graphene. The local thermoelectric elements were investigated by gate-tunable scanning thermoelectric microscopy on the atomic scale, revealing the roles of local lattice symmetry, impurity charge scatterings, and mechanical strains in the thermopower system. The long-range screening of electrons at the Dirac point in graphene, which could be reached by in-operando spectroscopy, allowed us to unveil distinct thermoelectric puddles in the graphene that are susceptible to the stacking order and external strain. Thus, manipulating thermoelectric puddles via a lattice symmetry and electronic engineering will realize practical thermopower systems with low-dimensional materials.

Original languageEnglish
Pages (from-to)5397-5404
Number of pages8
JournalACS Nano
Volume15
Issue number3
DOIs
StatePublished - 23 Mar 2021

Keywords

  • atomic-scale thermopower
  • electronic screening
  • in-operando thermal spectroscopy
  • lattice symmetry
  • thermoelectric puddles

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