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Nanometer range: A new theoretical challenge for microelectronics and optoelectronics

机译:纳米范围:微电子和光电子学的新理论挑战

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摘要

The equation is identified, from a couple of odd percussions, which yields the pilot wave forming the aura of a particle in the space conjugate to the four-dimensional space of direct experience. This leads to a substitute of the Copenhagen Interpretation providing the frame for demonstrating Heisenberg's uncertainty principle through a theorem of Fourier analysis. Revisiting the method of space-time domain paves the way to a new era of developments, by considering that a trapped particle located in a bounded bi-dimensional space, having less than 1 eV of kinetic energy, should have an associated wavelength representing a fraction of a wave cycle. In order to face the challenge, a new optoelectronics concept is proposed to contend with the broadening of the frequency bandwidth for a particle-wave trapped in a single-electron box: quasi-virtual electrons, trapped in nanometric single-electron thin boxes, interact by absorption-emission processes with coherent electromagnetic radiations. The migration is proposed for nanoelectronic transistor fabrication from semiconductor to semi-refractor materials.
机译:从几个奇数的撞击中识别出该方程式,该方程式产生的导波在与直接经验的二维空间共轭的空间中形成了粒子的光环。这导致了哥本哈根解释的替代,为通过傅立叶分析定理证明海森堡不确定性原理提供了框架。通过考虑位于有限二维空间中的,动能小于1 eV的被捕获粒子应具有代表分数的相关波长,重新审视时空方法为新时代的发展铺平了道路。一个波浪周期。为了应对这一挑战,提出了一种新的光电概念,以应对捕获在单电子盒中的粒子波的带宽的扩大:捕获在纳米单电子薄盒中的准虚拟电子相互作用通过具有相干电磁辐射的吸收发射过程。提出了从半导体到半折射材料的纳米电子晶体管制造的迁移。

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