4.8 Review

Hot carriers in graphene - fundamentals and applications

期刊

NANOSCALE
卷 13, 期 18, 页码 8376-8411

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0nr09166a

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资金

  1. Severo Ochoa program from Spanish MINECO [SEV-20170706]
  2. European Union's Horizon 2020 research and innovation program [804349, 881603]
  3. RyC fellowship [RYC-2017-22330]
  4. IAE project [PID2019-111673GB-I00]
  5. MAINZ
  6. German Research Foundation DFG [CRC 1375 NOA]
  7. Daimler und Benz foundation
  8. Natural Sciences and Engineering Research Council of Canada [PDF-516936-2018]
  9. Canada First Research Excellence Fund
  10. European Commission under the EU Horizon 2020 MSCA-RISE-2019 programme [873028]
  11. Leverhulme Trust [RPG-2019-363]
  12. European Research Council (ERC) [804349] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

Hot charge carriers in graphene exhibit unique physical properties due to its linear energy-momentum dispersion, phonon properties, all-interface character, and tunability of carrier density. There has been increasing interest in technological applications involving hot carriers in graphene, particularly in optical and optoelectronic applications. These applications could have disruptive impacts in areas such as data communication, high-frequency electronics, and industrial quality control.
Hot charge carriers in graphene exhibit fascinating physical phenomena, whose understanding has improved greatly over the past decade. They have distinctly different physical properties compared to, for example, hot carriers in conventional metals. This is predominantly the result of graphene's linear energy-momentum dispersion, its phonon properties, its all-interface character, and the tunability of its carrier density down to very small values, and from electron- to hole-doping. Since a few years, we have witnessed an increasing interest in technological applications enabled by hot carriers in graphene. Of particular interest are optical and optoelectronic applications, where hot carriers are used to detect (photodetection), convert (nonlinear photonics), or emit (luminescence) light. Graphene-enabled systems in these application areas could find widespread use and have a disruptive impact, for example in the field of data communication, high-frequency electronics, and industrial quality control. The aim of this review is to provide an overview of the most relevant physics and working principles that are relevant for applications exploiting hot carriers in graphene.

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