NATELM · NAnopatterning for Thermal Engineering in Layered Materials
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-05-01 → 2022-04-30
- EU contribution
- €133,892
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
NAnopatterning for Thermal Engineering in Layered Materials
Continued miniaturisation of microelectronic components bring about thermal limitations, with devices heating beyond safe levels. Great efforts have therefore been devoted to understanding and controlling thermal transport in nanoscale devices and thermal dynamics around hotspots. Historically, research has considered phonons, the heat carrers in these materials, as particles that can scatter on surfaces, which limits heat dissipation. More recently, efforts to tune the wave properties of these heat carriers have led to studies at ultralow temperatures. As these temperatures are impractical for most applications, materials with which these wave properties can be observed and controlled around room temperature are required. The recent emergence of ultrathin materials such as graphene, transition metal dichalcogenides (TMDs) and other 2D and layered materials has opened new prospects, not only in electronics, but also optics and filtering. This project aims at engineering and investigating the engineering of thermal transport properties of 2D materials by Focused Ion Beam (FIB) nano-patterning. This approach should provide enhanced control over thermal transport at higher temperatures and benefit both the thermal dissipation field, which is critical for modern electronic components, but also energy harvesting with technologies such as thermoelectricity. Practically, the project aims at using nano-patterning to control heat transport in 2D and layered materials, such as hotspot study, thermal rectification and phonon dispersion engineering. Nanopatterning modifies the transport properties of thermal carriers –mainly phonons– in two ways. First, it will impact surface scattering of phonons, with scattering events either in random directions of mirror-like reflection, which should enable thermal devices such as thermal lenses and rectification. Second, the wave nature of phonons should play a role in enhancing our control over thermal transport and the thermal properties of these materials. The project will rely on the periodic patterning of holes to (i) make a thermal rectifier in which the heat flux is higher in one dimension than in the opposite direction and (ii) understand the mechanisms governing heat transport at these scales. To achieve this, we will use focus ion beam etching to drill nanoscale holes in the materials.
Data: CORDIS, © European Union
Project objective
As modern devices shrink, thermal management become increasingly critical. The need for better understanding and control of thermal transport at the nanoscale thus arise and has been in the spotlight for several years for semiconductors such as silicon in particular. Recently, layered and 2D materials have been the focus of much research for their promising optical and electronic properties, and will be the core of many future devices in the field of Information and Communication Technologies. Their thermal properties need to be understood and controllable. Due to experimental challenges, they have remained largely unexplored. We propose the first experimental realization of thermal and phononic devices in 2D and layered materials that are expected to function at temperatures exceeding 300K. Our approach is based on engineering defects, pores or inclusions, in suspended 2D materials by focused ion beam and electron-beam lithography. These method would allow fabrication of desired (periodic, asymmetric, gradient) patterns with close to atomic precision and characteristic length scale of ~10 nm. That is smaller than the mean free path and coherence length of phonons in materials such aWe propose the first experimental realization of phononic devices in 2D materials that are ex-pected to function at temperatures exceeding 300K. Our approach is based on engineering de-fects in suspended 2D materials by focused ion beam. This method would allow fabrication of desired (periodic, asymmetric) patterns with close to atomic precision and characteristic length scale of ~10 nm. That is smaller than the mean free path and coherence length of phonons in materials such as graphene. This would provide fundamentally new opportunities to study ballis-tic and coherent thermal transport phenomena, for which such dimensions are a requirement, and to design novel thermal devices. If successful, it would represent a major step forward in the field of thermal management at the nanoscale.
Original text from CORDIS.
Participants
- CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisCoordinatorFrance
Links
- View on CORDIS
- DOI: 10.3030/898079
- https://neel.cnrs.fr/equipes-poles-et-services/thermodynamique-et-biophysique-des-petits-systemes-tps
Data: CORDIS, © European Union
