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3-D Quantum Transport Solver Based on the Perfectly Matched Layer and Spectral Element Methods for the Simulation of Semiconductor Nanodevices

机译:基于完美匹配层和光谱元素方法的3D量子传输解算器用于半导体纳米器件的仿真

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摘要

A 3-D quantum transport solver based on the spectral element method (SEM) and perfectly matched layer (PML) is introduced to solve the 3-D Schrödinger equation with a tensor effective mass. In this solver, the influence of the environment is replaced with the artificial PML open boundary extended beyond the contact regions of the device. These contact regions are treated as waveguides with known incident waves from waveguide mode solutions. As the transmitted wave function is treated as a total wave, there is no need to decompose it into waveguide modes, thus significantly simplifying the problem in comparison with conventional open boundary conditions. The spectral element method leads to an exponentially improving accuracy with the increase in the polynomial order and sampling points. The PML region can be designed such that less than −100 dB outgoing waves are reflected by this artificial material. The computational efficiency of the SEM solver is demonstrated by comparing the numerical and analytical results from waveguide and plane-wave examples, and its utility is illustrated by multiple-terminal devices and semiconductor nanotube devices.
机译:介绍了一种基于光谱元素方法(SEM)和完全匹配层(PML)的3-D量子传输求解器,以求解具有张量有效质量的3-DSchrödinger方程。在此求解器中,环境影响被扩展为超出设备接触区域的人工PML开放边界取代。这些接触区域被视为具有来自波导模式解决方案的已知入射波的波导。由于将透射波函数视为总波,因此无需将其分解为波导模式,因此与常规的开放边界条件相比,极大地简化了该问题。频谱元素方法导致多项式阶数和采样点的增加,使精度呈指数级提高。可以设计PML区域,以使这种人造材料反射小于-100 dB的输出波。通过比较波导和平面波示例的数值和分析结果,证明了SEM解算器的计算效率,并通过多端子设备和半导体纳米管设备来说明其实用性。

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