Tuning exciton-polariton populations in thin films of single-walled carbon nanotubes

J. Zaumseil
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Abstract

Thin films of semiconducting single-walled carbon nanotubes (SWCNTs) are ideal for strong light-matter coupling. We demonstrate optically and electrically pumped near-infrared exciton-polaritons at room temperature and the possibility to tune between weak, strong and ultrastrong coupling in field-effect transistors [Nat. Mater. 2017, 16, 911] and electrochromic devices [ACS Photonics 2018, 5, 2074]. While these polaritons are observed in simple metal-clad microcavities, coherent coupling of carbon nanotube excitons with hybrid plasmon-photonic modes results in plasmon-exciton polaritons (‘plexcitons’) [Nano Lett. 2018, 18, 4927]. Furthermore, covalent functionalization of SWCNTs creates luminescent defects with red-shifted emission. Without changing the polariton branch structure, radiative pumping through these emissive defects leads to an up to 10-fold increase of the polariton population in microcavities with detunings for large photon fractions [ACS Photonics 2021, 8, 182].
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单壁碳纳米管薄膜中激子-极化子居数的调谐
半导体单壁碳纳米管(SWCNTs)薄膜是理想的强光-物质耦合材料。我们展示了室温下的光学和电泵浦近红外激子极化,以及在场效应晶体管(Nat. Mater. 2017,16,911)和电致变色器件(ACS Photonics 2018, 5,2074)中弱、强和超强耦合之间调谐的可能性。虽然这些极化子是在简单的金属包覆微腔中观察到的,但碳纳米管激子与等离子体-光子混合模式的相干耦合会产生等离子体-激子极化子(“plexcitons”)[纳米学报,2018,18,4927]。此外,SWCNTs的共价功能化产生了红移发射的发光缺陷。在不改变极化子分支结构的情况下,通过这些发射缺陷的辐射泵浦导致具有大光子分数失谐的微腔中极化子数量增加高达10倍[ACS Photonics 2021, 8,182]。
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