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Electrons and photons in mesoscopic structures: quantum dots in a photonic crystal and in a microcavity

机译:介于镜像结构中的电子和光子:光子晶体中的量子点和微腔

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Mesoscopic structures with characteristic size either of the order of an electron de Broglie wavelength in semiconductors (1-10 nm) or close to the optical photon wavelength (100-1000 nm) exhibit non-trivial properties due to modified electron or photon density of states. Three-dimensional spatial confinement of electrons in nanocrystals (quantum dots) results in size-dependent energies and probabilities of optical transitions. The photon density of states can be modified in structures with strong modulation of the refractive index in three dimensions (photonic crystals) and in microcavities. Because of the essentially different electron and photon wavelengths, electron and photon densities of states can be engineered separately within the same mesostructure. We report here on synthesis and properties of semiconductor quantum dots corresponding to the strong confinement limit embedded either in a photonic crystal exhibiting a pseudogap or in a planar microcavity. We show that the interplay of electron and photon confinement within the same structure opens a way towards novel light sources with controllable spontaneous emission. Spontaneous emission which is not an inherent property of quantum systems but a result of their interaction with electromagnetic vacuum can be either promoted or inhibited depending on the modification of the photon density of states in a given mesostructure.
机译:具有半导体(1-10nm)中的电子de roglie波长的次幂尺寸的介观结构或靠近光学光子波长(100-1000nm),由于状态改性的电子或光子密度而表现出非平凡的性质。纳米晶体中电子的三维空间限制(量子点)导致尺寸依赖性能量和光学过渡的概率。状态的光子密度可以在具有强度调制三维(光子晶体)和微腔中的折射率强制调节的结构中进行修改。由于基本上不同的电子和光子波长,态的电子和光子密度可以在同一型腹部结构中分开地设计。我们在这里报告对应于嵌入的光子晶体中嵌入的伪图或平面微腔中的强距限制的半导体量子点的合成和性质。我们表明,相同结构内的电子和光子限制的相互作用开辟了具有可控自发发射的新型光源的方式。自发发射不是量子系统的固有特性,但是,它们与电磁真空的相互作用的结果可以促进或抑制,这取决于给定的腹部结构中的状态的光子密度的修饰。

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