Abstract
Determining the electronic transport properties of graphene nanoribbons is crucial for assessing their suitability for applications. So far, this has been highly challenging both through experimental and theoretical approaches. This is particularly the case for graphene nanoribbons that are prepared by chemical vapor deposition, which is a scalable and industry-compatible bottom-up growth method that results in closely packed arrays of ribbons with relatively short lengths of a few tens of nanometers. In this study, the experimental technique of spatiotemporal microscopy is applied to study monolayer films of 9-armchair graphene nanoribbons prepared using this growth method, and combined with linear-scaling quantum transport calculations of arrays of thousands of nanoribbons. Both approaches directly resolve electronic spreading in space and time through diffusion and give an initial diffusivity approaching 200 cm2 s-1 during the first picosecond after photoexcitation. This corresponds to a mobility up to 550 cm2 V-1 s-1. The quasi-free carriers then form excitons, which spread with a diffusivity of tens of cm2 s-1. The results indicate that this relatively large charge carrier mobility is the result of electronic transport not being hindered by defects nor inter-ribbon hopping. This confirms their suitability for applications that require efficient electronic transport.
| Original language | English |
|---|---|
| Article number | e2407796 |
| Journal | Advanced Materials |
| Volume | 36 |
| Issue number | 50 |
| Early online date | 28 Oct 2024 |
| DOIs | |
| Publication status | Published - 12 Dec 2024 |
Bibliographical note
Publisher Copyright:© 2024 The Author(s). Advanced Materials published by Wiley-VCH GmbH.
Funding
S.V. acknowledges the support of the Spanish Ministry of Economy through FPI\u2010SO2018. K.J.T. acknowledges funding from the European Union's Horizon 2020 research and innovation program under Grant Agreement No. 804349 (ERC StG \u201CCUHL\u201D) and Spanish MCIN/AEI project PID2022\u2010142730NB\u2010I00 (\u201CHYDROPTO\u201D). A.N. and K.M. acknowledge the financial support from the Max Planck Society. ICN2 is funded by the CERCA Programme/Generalitat de Catalunya and supported by the Severo Ochoa Centres of Excellence programme, Grant CEX2021\u2010001214\u2010S, funded by MCIN/AEI/10.13039.501100011033.
| Funders | Funder number |
|---|---|
| Max-Planck-Gesellschaft | |
| de Catalunya | |
| Ministerio de Asuntos Económicos y Transformación Digital, Gobierno de España | FPI‐SO2018 |
| Ministerio de Asuntos Económicos y Transformación Digital, Gobierno de España | |
| Horizon 2020 | 804349 |
| Horizon 2020 | |
| European Research Council | PID2022‐142730NB‐I00 |
| European Research Council | |
| Severo Ochoa Centres of Excellence | MCIN/AEI/10.13039.501100011033 |
Keywords
- charge mobility
- excitons
- graphene nanoribbons
- spatiotemporal microscopy
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