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The 2017 terahertz science and technology roadmap

Journal of Physics D Applied Physics · 2017 · Vol. 50(4) · pp. 043001–043001
Sukhdeep DhillonMiriam S. VitielloE. H. LinfieldA. G. DaviesMatthias C. HoffmannJohn H. BooskeClaudio PaoloniMichael GenschP. WeightmanGwyn WilliamsEnrique Castro-CamusDavid R. S. CummingF. SimoensIvonne Escorcia CarranzaJames GrantStepan LucyszynMakoto Kuwata‐GonokamiKuniaki KonishiMartín KochCharles A. SchmuttenmaerTyler L. CockerR. HuberAndrea MarkelzZachary TaylorVincent P. WallaceJ. Axel ZeitlerJuraj ŠibíkTimothy M. KorterBrian EllisonSimon ReaP. F. GoldsmithKen B. CooperRoger ApplebyDiego PardoPeter G. HuggardViktor KrozerHaymen ShamsMartyn J. FiceCyril C. RenaudA.J. SeedsAndreas StöhrMira NaftalyNick RidlerRoland ClarkeJ. E. CunninghamMichael B. Johnston

Abstract

Science and technologies based on terahertz frequency electromagnetic radiation (100 GHz–30 THz) have developed rapidly over the last 30 years. For most of the 20th Century, terahertz radiation, then referred to as sub-millimeter wave or far-infrared radiation, was mainly utilized by astronomers and some spectroscopists. Following the development of laser based terahertz time-domain spectroscopy in the 1980s and 1990s the field of THz science and technology expanded rapidly, to the extent that it now touches many areas from fundamental science to 'real world' applications. For example THz radiation is being used to optimize materials for new solar cells, and may also be a key technology for the next generation of airport security scanners. While the field was emerging it was possible to keep track of all new developments, however now the field has grown so much that it is increasingly difficult to follow the diverse range of new discoveries and applications that are appearing. At this point in time, when the field of THz science and technology is moving from an emerging to a more established and interdisciplinary field, it is apt to present a roadmap to help identify the breadth and future directions of the field. The aim of this roadmap is to present a snapshot of the present state of THz science and technology in 2017, and provide an opinion on the challenges and opportunities that the future holds. To be able to achieve this aim, we have invited a group of international experts to write 18 sections that cover most of the key areas of THz science and technology. We hope that The 2017 Roadmap on THz science and technology will prove to be a useful resource by providing a wide ranging introduction to the capabilities of THz radiation for those outside or just entering the field as well as providing perspective and breadth for those who are well established. We also feel that this review should serve as a useful guide for government and funding agencies.

Terahertz technology and applicationsGyrotron and Vacuum Electronics ResearchSuperconducting and THz Device TechnologyTerahertz radiationElectromagnetic spectrumComputer scienceEngineering physicsPhysicsOptics

Funding

  • Sight Research UK
  • Engineering and Physical Sciences Research Council
  • Natural Environment Research Council
  • Science and Technology Facilities Council
Citations
1,455
FWCI
93.38
field-weighted impact
References
196
Percentile
100%
vs. same field & year
Citations per year
References
Cutting-edge terahertz technology
Nature Photonics · 2007 · 6,109 citations
Subpicosecond photoconducting dipole antennas
IEEE Journal of Quantum Electronics · 1988 · 792 citations
Wireless sub-THz communication system with high data rate
Nature Photonics · 2013 · 1,534 citations
From metamaterials to metadevices
Nature Materials · 2012 · 2,235 citations
Imaging with terahertz waves
Optics Letters · 1995 · 1,620 citations
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