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首页> 外文期刊>Journal of Lightwave Technology >Low-truncation-error finite difference equations for photonics simulation. II. Vertical-cavity surface-emitting lasers
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Low-truncation-error finite difference equations for photonics simulation. II. Vertical-cavity surface-emitting lasers

机译:用于光子学模拟的低截断误差有限差分方程。二。垂直腔面发射激光器

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摘要

For part I see, ibid., p. 134, 1998. The basic approach outlined in the previous article is applied to the difficult problem of computing the optical modes of a vertical-cavity surface-emitting laser. The formulation utilizes a finite difference equation based upon the lowest order term of an infinite series solution of the scalar Helmholtz equation in a local region. This difference equation becomes exact in the one-dimensional (1-D) limit, and is thus ideally suited for nearly 1-D devices such as vertical-cavity lasers. The performance of the resulting code is tested on both a simple cylindrical cavity with known solutions and an oxide-confined vertical-cavity laser structure, and the results compared against second-order-accurate code based upon Crank-Nicolson differencing.
机译:我看到的部分同上,p。 134,1998。上一篇文章中概述的基本方法适用于计算垂直腔面发射激光器的光学模式的难题。该公式基于局部区域中标量Helmholtz方程的无限级数解的最低阶项,利用了一个有限差分方程。该差分方程在一维(1-D)极限中变得精确,因此理想地适合于几乎一维的设备,例如垂直腔激光器。在具有已知解决方案的简单圆柱腔和氧化物受限的垂直腔激光结构上测试了所得代码的性能,并将结果与​​基于Crank-Nicolson差分的二阶精确代码进行了比较。

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