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Nanophotonic devices based on quantum systems embedded in frequency bandgap media

机译:基于嵌入在带隙介质中的量子系统的纳米光子器件

摘要

The present invention describes nanophotonic materials and devices for both classical and quantum optical signal processing, transmission, amplification, and generation of light, which are based on a set of quantum systems having a discrete energy levels, such as atoms, molecules, or quantum dots, embedded in a frequency bandgap medium, such as artificial photonic crystals (photonic bandgap materials) or natural frequency dispersive media, such as ionic crystals, molecular crystals, or semiconductors, exhibiting a frequency (photonic) bandgap for propagating electromagnetic modes coupled to optical transitions in the quantum systems. If the frequency of one of optical transitions, called the working transition, lies inside the frequency bandgap of the medium, then spontaneous decay of the working transition into propagating photon modes is completely suppressed. Moreover, the excitation of the working transition and a photon form a photon-quantum system bound state lying inside the photonic bandgap of the medium, in which radiation is localized in the vicinity of the quantum system. In a quantum system “wire” or a quantum system “waveguide”, made of spatially disordered quantum systems, or in a chain quantum system waveguide made of a periodically ordered identical quantum systems, wave functions of the photon-quantum system bound states localized on different quantum systems overlap each other and develop a photonic passband lying inside bandgap of the photonic bandgap medium. Photons with frequencies lying inside the photonic passband propagate along the quantum system waveguide. Since the working transition cannot be excited twice, the passband photons interact with each other extremely strongly both in one waveguide and in different waveguides that are located sufficiently close to each other. These unique nonlinear properties of the quantum system waveguides are proposed to use for engineering key nanophotonic devices, such as all-optical and electro-optical switches, modulators, transistors, control-NOT logic gates, nonlinear directional couplers, electro-optical modulators and converters, generators of entangled photon states, passband optical amplifiers and lasers, as well as all-optical integrated circuits for both classical and quantum optical signal processing, including quantum computing.
机译:本发明描述了用于经典和量子光信号处理,传输,放大和产生光的纳米光子材料和装置,其基于具有离散能级的一组量子系统,例如原子,分子或量子点。嵌入在带隙介质中,例如人工光子晶体(光子带隙材料)或自然频率色散介质,例如离子晶体,分子晶体或半导体,它们展现出能传播与光跃迁耦合的电磁模的频率(光子)带隙在量子系统中。如果光学跃迁之一的频率(称为工作跃迁)位于介质的频带隙之内,那么将完全抑制工作跃迁自发衰减到传播的光子模式。此外,工作跃迁和光子的激发形成位于介质的光子带隙内部的光子-量子系统的束缚状态,其中辐射位于量子系统附近。在由空间无序的量子系统制成的量子系统“线”或量子系统“波导”中,或在由周期性有序的相同量子系统制成的链式量子系统波导中,光子-量子系统的波函​​数束缚在不同的量子系统相互重叠,并形成位于光子带隙介质的带隙内的光子通带。频率位于光子通带内的光子沿着量子系统波导传播。由于工作跃迁不能被激发两次,所以通带光子在一个波导中以及在彼此足够靠近的不同波导中都非常强烈地相互作用。量子系统波导的这些独特的非线性特性被建议用于工程关键的纳米光子器件,例如全光和电光开关,调制器,晶体管,NOT控制逻辑门,非线性定向耦合器,电光调制器和转换器,纠缠光子状态的发生器,通带光放大器和激光器,以及用于经典和量子光信号处理(包括量子计算)的全光集成电路。

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