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Crystallization of Isolated Amorphous Zones in Semiconductor Materials

机译:半导体材料中分离的非晶区的结晶

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Crystallization of spatially isolated amorphous zones in Si, Ge, GaP, InP and GaAs was stimulated thermally and by irradiation with electrons and photons. The amorphous zones were created by a 50 keV Xe~+ implantation. Significant thermal crystallization occurred at temperatures greater than 425K, 375K and 200K in Si, Ge and GaAs, respectively. Electrons with energies between 25 and 300 keV stimulated crystallization in all materials at temperatures between 90K and room temperature. For electron energies above the displacement threshold, the crystallization rate decreased as the electron energy decreased. As the electron energy was decreased below approximately 100 keV, the crystallization rate unexpectedly increased. The crystallization rate was independent of temperature for all electron irradiations. Irradiation with a 532nm green laser (hv=2.33 eV) caused crystallization in Si(E_g=1.11 eV) and Ge (E_g=0.67 eV) at a rate comparable to a thermal anneal at 425K and 375K, respectively, and caused minimal crystallization in GaP(E_g=2.26 eV). The electron and photon irradiation results are consistent with the model that crystallization is controlled by defects (dangling bonds and kinks) created by electronic excitation at the amorphous-crystalline interface.
机译:用电子和光子辐射刺激空间上分离的无定形区的空间上分离的无定形区的结晶。非晶区由50keV Xe +植入产生。在Si,Ge和GaAs的高于425k,375k和200k的温度下发生显着的热结晶。电极在25至300keV之间的电磁在90k和室温的温度下刺激所有材料的结晶。对于位移阈值上方的电子能量,随着电子能量的降低而降低结晶速率。随着电子能量降低约100keV,结晶速率意外增加。结晶速率与所有电子照射的温度无关。用532nm的绿色激光(HV = 2.33eV)照射,在Si(E_G = 1.11eV)和GE(E_G = 0.67eV)中以与425K和375K的热退火相当的速率引起GE(E_G = 0.67eV),并引起最小的结晶间隙(E_G = 2.26eV)。电子和光子辐照结果与通过在非晶结晶界面处的电子激发产生的缺陷(悬挂键和扭结)来控制的模型一致。

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