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Electrical pumping and tuning of exciton-polaritons in carbon nanotube microcavities

机译:碳纳米管微腔中激子-极化子的电泵浦和调谐

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Exciton-polaritons are hybrid light-matter particles that form upon strong coupling of an excitonic transition to a cavity mode. As bosons, polaritons can form condensates with coherent laser-like emission. For organic materials, optically pumped condensation was achieved at room temperature but electrically pumped condensation remains elusive due to insufficient polariton densities. Here we combine the outstanding optical and electronic properties of purified, solution-processed semiconducting (6,5) single-walled carbon nanotubes (SWCNTs) in a microcavity-integrated light-emitting field-effect transistor to realize efficient electrical pumping of exciton-polaritons at room temperature with high current densities (>10 kA cm~(-2)) and tunability in the near-infrared (1,060 nm to 1,530 nm). We demonstrate thermalization of SWCNT polaritons, exciton-polariton pumping rates ~10~4 times higher than in current organic polariton devices, direct control over the coupling strength (Rabi splitting) via the applied gate voltage, and a tenfold enhancement of polaritonic over excitonic emission. This powerful material-device combination paves the way to carbon-based polariton emitters and possibly lasers.
机译:激子极化子是混合的光子粒子,在激子跃迁与腔模的强耦合时形成。极化子可作为玻色子形成凝聚态,并具有相干的类似激光的发射。对于有机材料,在室温下实现了光泵浦冷凝,但由于极化子密度不足,电泵浦冷凝仍然难以捉摸。在这里,我们在微腔集成的发光场效应晶体管中结合了纯化的,固溶处理的半导体(6,5)单壁碳纳米管(SWCNT)的出色光学和电子性能,以实现对激子极化子的有效电泵浦在室温下具有高电流密度(> 10 kA cm〜(-2))和在近红外波段(1,060 nm至1,530 nm)的可调性。我们证明了SWCNT极化子的热化,激子-极化子的抽运速率比当前有机极化子器件高10〜4倍,通过施加的栅极电压直接控制耦合强度(拉比分裂)以及极化子比激子发射增强了十倍。这种强大的材料-设备组合为碳基极化子发射器以及可能的激光器铺平了道路。

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  • 来源
    《Nature Materials》 |2017年第9期|911-917|共7页
  • 作者单位

    Institute for Physical Chemistry, Universitat Heidelberg, D-69120 Heidelberg, Germany,Organic Semiconductor Centre, SUPA, School of Physics and Astronomy, University of St Andrews, St Andrews KY16 9SS, UK;

    Institute for Physical Chemistry, Universitat Heidelberg, D-69120 Heidelberg, Germany;

    Institute for Physical Chemistry, Universitat Heidelberg, D-69120 Heidelberg, Germany;

    Organic Semiconductor Centre, SUPA, School of Physics and Astronomy, University of St Andrews, St Andrews KY16 9SS, UK;

    Organic Semiconductor Centre, SUPA, School of Physics and Astronomy, University of St Andrews, St Andrews KY16 9SS, UK;

    Institute for Physical Chemistry, Universitat Heidelberg, D-69120 Heidelberg, Germany;

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