Optimizing isotope and vacancy engineering in graphene ribbons to enhance the thermoelectric performance without degrading the electronic properties
Van-Truong Tran, J\'er\^ome Saint-Martin, Philippe Dollfus, Sebastian, Volz

TL;DR
This paper demonstrates that introducing isotopes and vacancies in graphene ribbons can significantly boost thermoelectric efficiency by reducing phonon conductance without harming electronic properties, achieving a ZT over 2.5 at room temperature.
Contribution
It presents a novel approach using specific disorder sources to enhance thermoelectric performance in graphene without degrading electronic properties.
Findings
ZT increased from 0.26 to over 2.5 at room temperature.
Phonon conductance reduced without harming electrical conductance.
Method preserves natural electronic properties while improving thermoelectric efficiency.
Abstract
The enhancement of thermoelectric figure of merit ZT requires to either increase the power factor or reduce the phonon conductance, or even both. In graphene, the high phonon thermal conductivity is the main factor limiting the thermoelectric conversion. The common strategy to enhance ZT is therefore to introduce phonon scatterers to suppress the phonon conductance while retaining high electrical conductance and Seebeck coefficient. Although thermoelectric performance is eventually enhanced, all studies based on this strategy show a significant reduction of the electrical conductance, most often leading to a lower electronic performance. In this study we show that appropriate sources of disorder, including isotopes and vacancies at lowest electron density positions, can be used as phonon scatterers to reduce the phonon conductance in graphene ribbons without degrading the electrical…
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Taxonomy
TopicsGraphene research and applications · Thermal properties of materials · Advanced Thermoelectric Materials and Devices
