光电子学
极化子
材料科学
晶体管
皮秒
半导体
光子学
光开关
光学
物理
激光器
量子力学
电压
作者
Anton V. Zasedatelev,Anton V. Baranikov,Darius Urbonas,Fabio Scafirimuto,Ullrich Scherf,Thilo Stöferle,Rainer F. Mahrt,Pavlos G. Lagoudakis
出处
期刊:Nature Photonics
[Nature Portfolio]
日期:2019-03-25
卷期号:13 (6): 378-383
被引量:215
标识
DOI:10.1038/s41566-019-0392-8
摘要
Active optical elements with ever smaller footprint and lower energy consumption are central to modern photonics. The drive for miniaturization, speed and efficiency, with the concomitant volume reduction of the optically active area, has led to the development of devices that harness strong light–matter interactions. By managing the strength of light–matter coupling to exceed losses, quasiparticles, called exciton-polaritons, are formed that combine the properties of the optical fields with the electronic excitations of the active material. By making use of polaritons in inorganic semiconductor microcavities, all-optical transistor functionality was observed, albeit at cryogenic temperatures1. Here, we replace inorganic semiconductors with a ladder-type polymer in an optical microcavity and realize room-temperature operation of a polariton transistor through vibron-mediated stimulated polariton relaxation. We demonstrate net gain of ~10 dB μm−1, sub-picosecond switching time, cascaded amplification and all-optical logic operation at ambient conditions. Net gain of ~10 dB µm–1 and sub-picosecond switching time are shown at room temperature for optical transistors using polymers in a microcavity.
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