逻辑门
光开关
或门
光学晶体管
晶体管
和大门
计算机科学
逆变器
电子线路
NOR门
异或门
物理
光电子学
光学计算
电子工程
与非门
工程类
光学
量子力学
电压
作者
Denis Sannikov,Anton V. Baranikov,Anton D. Putintsev,Mikhail Misko,Anton V. Zasedatelev,Ullrich Scherf,Pavlos G. Lagoudakis
标识
DOI:10.1038/s41467-024-49690-3
摘要
Abstract Today, almost all information processing is performed using electronic logic circuits operating at several gigahertz frequency. All-optical logic holds the promise to allow for up to three orders of magnitude higher speed. Whereas essential all-optical transistor functionalities were demonstrated across a range of platforms, utilising them to implement a complete Boolean logic gate set and in particular negation, i.e. switching off an optical signal with another, weaker, optical signal, poses a major challenge. Here, we realize a cascadable NOT gate by introducing the concept of non-ground-state polariton amplification in organic semiconductor microcavities under non-resonant optical excitation. We unravel the importance of vibron-mediated stimulated scattering in room temperature operation of the inverter. Moreover, we extend the concept to a multi-input universal NOR logic gate, where in the presence of any of the input signals non-ground-state amplification supersedes spontaneous ground-state condensation, resulting in a NOR gate with ~1 ps switching time. The realisation of an ultrafast universal logic gate constitutes an essential step for more complex optical circuitry that could boost information processing applications.
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