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首页> 外文期刊>Royal Society Open Science >Ab initio electronic stopping power for protons in Ga0.5In0.5P/GaAs/Ge triple-junction solar cells for space applications
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Ab initio electronic stopping power for protons in Ga0.5In0.5P/GaAs/Ge triple-junction solar cells for space applications

机译:AB Initio电子停止功率在Ga0.5in0.5p / gaas / ge三叉光太阳能电池中的用于空间应用

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Motivated by the radiation damage of solar panels in space, firstly, the results of Monte Carlo particle transport simulations are presented for proton impact on triple-junction Ga 0.5 In 0.5 P/GaAs/Ge solar cells, showing the proton projectile penetration in the cells as a function of energy. It is followed by a systematic ab initio investigation of the electronic stopping power (ESP) for protons in different layers of the cell at the relevant velocities via real-time time-dependent density functional theory calculations. The ESP is found to depend significantly on different channelling conditions, which should affect the low-velocity damage predictions, and which are understood in terms of impact parameter and electron density along the path. Additionally, we explore the effect of the interface between the layers of the multilayer structure on the energy loss of a proton, along with the effect of strain in the lattice-matched solar cell. Both effects are found to be small compared with the main bulk effect. The interface energy loss has been found to increase with decreasing proton velocity, and in one case, there is an effective interface energy gain.
机译:由于太阳能电池板在空间中的辐射损伤,首先,介绍了Monte Carlo粒子传输模拟的结果,用于对0.5p / gaas / ge太阳能电池中的三射线Ga 0.5的质子撞击,显示细胞中的质子射弹渗透作为能量的函数。随后是通过实时时间依赖性密度泛函计算在相关速度下,在相关速度的不同层中的电子停止功率(ESP)的系统AB初始研究。发现ESP在不同的沟道条件下显着依赖于不同的信道条件,这应该影响低速损伤预测,并且在沿着路径的冲击参数和电子密度方面被理解。另外,我们探讨了多层结构层之间的界面对质子的能量损失的影响,以及晶格匹配太阳能电池中的应变的影响。与主要散装效应相比,发现两种效果都很小。已经发现界面能量损失随着质子速度的降低而增加,并且在一个情况下,存在有效的接口能量增益。

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