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Low Dimension Structures And Devices For New Generation Photonic Technology

机译:新一代光子技术的低尺寸结构和装置

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Low dimensional structures and devices are the key technological building blocks for new generation of electronic and photonic technology. Such structures and devices show novel properties and can be integrated into systems for wide applications in many areas, including medical, biological and military and advancement of science. In this invited talk, I will present the main results achieved in our competitive research program which aims to explore the application of the mesoscopic structures in light source, manipulation and imaging and integrate them into advanced systems. In the light source aspect, we have for the first time developed graphene mode-locked lasers which are in the process of commercialization. Nanocrystal Si embedded in dielectrics was formed by ion implantation and subsequent annealing. Si light emitting devices with external quantum efficiency of about 2.9×10~(-3) % for visible emission were demonstrated at room temperature and the color of emitted light can be tuned electrically from violet to white by varying the injected current. In light manipulation, loss compensation of surface plasmon polaritons (SPPs) using quantum well (QW) gain media was studied theoretically and demonstrated experimentally. The SPP propagation length was effectively elongated several times through electrical pumping. One and two microring resonators based on silicon on insulator and III-V semiconductors technologies have been successfully fabricated and they can be used as filter and switch in the photonic circuit. In imaging, both SPP and low dimension structures are investigated and resolution far beyond diffraction limit in visible range has been realized. The integration of the components in the three aspects into complicated systems is on the way.
机译:低维结构和设备是新一代电子和光子技术的关键技术构建块。这种结构和装置显示了新颖性质,可以集成到许多领域的广泛应用的系统中,包括医学,生物和军事和科学的进步。在这邀请的谈话中,我将在我们的竞争性研究计划中提出主要的结果,旨在探讨光源,操纵和成像中的介于介绍结构,并将它们集成到先进系统中。在光源方面,我们首次开发了在商业化过程中的石墨烯模式锁定激光器。通过离子注入和随后的退火形成嵌入电介质中的纳米晶Si。在室温下对具有外部量子效率约为2.9×10〜(-3)%的SI发光器件,在室温下证明了可见光的颜色,可以通过改变注入的电流从紫罗兰色到白色电气地调谐。在理论上,通过实验研究了使用量子阱(QW)增益介质的表面等离子体极性官(SPP)的损耗补偿。通过电泵有效地伸长了SPP传播长度。已经成功地制造了基于绝缘体和III-V半导体技术的硅的一个和两个微谐谐振器,它们可以用作过滤器并在光子电路中开关。在成像中,研究了SPP和低尺寸结构,已经实现了远远超出可见范围中的衍射极限的分辨率。在三个方面集成了组件到复杂系统的路上。

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