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首页> 外文期刊>International Journal of Nanotechnology >Attosecond nanotechnology: from subatomic electrostatic strings entangling electron pairs to supra-atomic quantum nanoelectromechanical systems energy storage in materials
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Attosecond nanotechnology: from subatomic electrostatic strings entangling electron pairs to supra-atomic quantum nanoelectromechanical systems energy storage in materials

机译:Attosecond纳米技术:从子静电串缠结电子对的超原子量子纳米机电系统材料中的储能

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摘要

This paper is concerned with a physical model and computer simulation describing joint processes of attosecond bi-electronics and femtosecond electronics at the supra-atomic level of materials. It has been proved that an external attosecond pulse of electromagnetic radiation excites an electrostatic chi-string of the gauge electromagnetic field in materials, which entangles a subatomic electron pair ((e) over bar similar to chi similar to(e) over bar). This string is a result of spontaneous breaking of the gauge electronic field symmetry of the condensed state. The quantum coherence length of attosecond propagation in a subatomic entangled electron pair varies from 0.1 nm to 10 nm and determines a spatial supra-atomic level in non-equilibrium materials. Attosecond processes of bielectronics and femtosecond processes of standard electronics take place at the nanometre scale of materials from one to several thousand atoms. General approaches of thermo-field dynamics and quantum field chemistry of the condensed state describe joint parallel energy dissipation processes in the Fermi gas of electrons and the Bose gas of bi-electrons. Boundaries of bi-electron supercapacitor electrostatic x-strings confine a part of nuclei and an electron Fermi gas inside their compact spatial basin. They create quantum nanoelectromechanical system energy storage. This paper presents main stages of the genesis of quantum nanoelectromechanical system energy storage using attosecond pulses of ultra-violet and soft X-ray radiation. The paper also provides computer modelling of the quantum nanoelectromechanical system with 500 atomic cuboids in the face centred cubic (FCC) crystal lattice of the palladium group metals at the temperature of 77 K. It is shown that these cuboids stable accumulate energy about 1 keV that corresponds with quanta of soft X-ray radiation.
机译:本文涉及物理模型和计算机仿真,描述了在超原子材料水平的Atosecond Bi-Electronics和FemtoSecond电子的联合过程中。已经证明,电磁辐射的外部抗折叠脉冲激发了仪表的静电Chi串,其材料中的仪表电磁场的静电Chi串,其缠绕了类似于与(e)上的类似杆的子块电子对((e)的棒)。该字符串是仪表电子场对称性的自发性断裂的结果。子缠结电子对中的attoSecond传播的量子相干长度从0.1nm至10nm变化,并确定非平衡材料中的空间上述原子水平。标准电子学士学位和飞秒工艺的亚体释放过程从一到几千个原子的纳米材料达到纳米级。冷凝状态的热场动力学和量子场化学的一般方法描述了电子和Bi-Electrons的Bose气体中的联合并联能量耗散过程。双电子超级电容器静电X串的界限限制了核的一部分和在其紧凑的空间盆内内的电子费米气体。它们产生量子纳米机电系统储能。本文介绍了使用超紫色和软X射线辐射的阳离子脉冲的量子纳米机电系统能量存储成因的主要阶段。本文还提供了在77k温度的面中心立方体(FCC)晶体中具有500原子立方体的量子纳米机电系统的计算机建模,在77k的温度下。表明这些长方体稳定累积大约1keV的能量对应于软X射线辐射的量子。

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