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Electrically controlled heat transport in graphite films via reversible ionic liquid intercalation

  • Pietro Steiner
  • , Saqeeb Adnan
  • , M. Said Ergoktas
  • , Julien Barrier
  • , Xiaoxiao Yu
  • , Vicente Orts
  • , Gokhan Bakan
  • , Jonathan Aze
  • , Yury Malevich
  • , Kaiyuan Wang
  • , Pietro Cataldi
  • , Mark Bissett
  • , Sinan Balci
  • , Sefik Suzer
  • , Marat Khafizov
  • , Coskun Kocabas
  • University of Manchester
  • Ohio State University
  • Universitas Mercatorum
  • Izmir Institute of Technology
  • Bilkent University

Research output: Contribution to journalArticlepeer-review

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Abstract

The ability to control heat transport with electrical signals has been an outstanding challenge due to the lack of efficient electrothermal materials. Previous attempts have mainly concentrated on low–thermal conductivity materials and encountered various problems such as narrow dynamic range and modest on/off ratios. Here, using high–thermal conductivity graphite films, we demonstrate an electrothermal switch enabling electrically tunable heat flow at the device level. The device uses reversible electro-intercalation of ions to modulate the in-plane thermal conductivity of graphite film by more than 13-fold via tunable phonon scattering, enabling observable modulation of the thermal conductivity at the device level. We anticipate that our results could provide a realistic pathway for adaptive thermal transport, enabling electrically driven thermal devices that would find a broad spectrum of applications in aerospace and microelectronics.
Original languageEnglish
Article number eadw8588
Number of pages10
JournalScience Advances
Volume11
Issue number30
Early online date25 Jul 2025
DOIs
Publication statusPublished - 25 Jul 2025

Data Availability Statement

All data needed to evaluate the conclusions in the paper are present in the paper and/or the Supplementary Materials. A detailed description of the mathematical algorithms used to calculate the thermal properties are reported in sections S3.1 and S3.2.

Funding

This research is supported by Airbus-CDT Graphene-NOWNANO (EPSRC funding Centre for Doctoral Training), European Research Council through ERC-Consolidator Grant (grant no. 682723, SmartGraphene), and UKRI EP/X027643/1 (ERC PoC grant). S.A. and M.K. acknowledge support from the Center for Thermal Energy Transport under Irradiation, an Energy Frontier Research Center funded by the US Department of Energy, Office of Science, Office of Basic Energy Science. We also acknowledge Henry Royce Institute for Advanced Materials for the nano-IR characterization facility.

FundersFunder number
Center for Thermal Energy Transport
Basic Energy Sciences
US Department of Energy
Office of Science
Engineering and Physical Sciences Research Council
European Research Council
Henry Royce Institute
ERC-Consolidator682723
UK Research & InnovationEP/X027643/1

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