首页> 外文期刊>Physical Review, B. Condensed Matter >Fractal kinetics of radiation-induced point-defect formation and decay in amorphous insulators: Application to color centers in silica-based optical fibers - art. no. 174201
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Fractal kinetics of radiation-induced point-defect formation and decay in amorphous insulators: Application to color centers in silica-based optical fibers - art. no. 174201

机译:非晶绝缘子中辐射诱发的点缺陷形成和衰变的分形动力学:应用于二氧化硅基光纤的色心-艺术。没有。 174201

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Formalisms have been developed to express the time evolution of bimolecular processes taking place in fractal spaces. These "stretched-second-order" solutions are specifically applicable to radiation-induced electron-hole pairs and/or vacancy-interstitial pairs in insulating glasses. Like the analogous Kohlrausch-type (stretched-first-order) expressions, the present solutions are functions of (kt)(beta), where 0 < < 1, k is an effective rate coefficient, and t is time. Both the new second-order formalism and the familiar Kohlrausch approach have been used to fit experimental data (induced optical absorptions in silica-based glasses monitored at selected wavelengths) that serve as proxies for the numbers of color centers created by irradiation and/or destroyed by processes involving thermal, optical, or gamma -ray activation. Two material systems were investigated: (1) optical fibers with Ge-doped-silica cores and (2) fibers with low-OH/low-chloride pure-silica cores. Successful fits of the growth curves for the Ge-doped-silica-core fibers at four widely separated dose rates were accomplished using solutions for color-center concentrations, N[(kt)(beta)], which approach steady-state values, N-sat, as t --> infinity. The parametrization of these fits reveals some unexpected, and potentially useful, empirical rules regarding the dose-rate dependences of beta, k, and N-sat in the fractal regime (0 < < 1). Similar, though possibly not identical, rules evidently apply to color centers in the pure-silica-core fibers as well. In both material systems, there appear to be fractal classical phase transitions at certain threshold values of dose rate, below which the dose-rate dependencies of k and N-sat revert to those specified by classical (beta = 1) first- or second-order kinetics. For kt much less than 1, both the first- and second-order fractal kinetic growth curves become identical, i.e., N((kt)(beta))approximate to At-beta, where the coefficient A depends on dose rate but not kinetic order. It is found empirically that A depends on the 3 beta /2 power of dose rate in both first- and second-order kinetics, thus "accidentally" becoming linearly proportional to dose rate in cases where beta approximate to2/3 (characteristic of random fractals and many disordered materials). If interfering dose-rate-independent components are absent, it is possible to distinguish the order of the kinetics from the shapes of the growth and decay curves in both fractal and classical regimes. However, for reasons that are discussed, the parameters that successfully fit the experimental growth curves could not be used as bases for closed-form predictions of the shapes of the decay curves recorded when the irradiation is interrupted. [References: 31]
机译:已经形成形式主义来表达在分形空间中发生的双分子过程的时间演化。这些“拉伸二阶”解决方案特别适用于绝缘玻璃中的辐射感应电子空穴对和/或空位间隙对。类似于类似的Kohlrausch型(拉伸一阶)表达式,当前解决方案是(kt)β的函数,其中0 <β<1,k是有效速率系数,t是时间。新的二阶形式主义和熟悉的Kohlrausch方法都已用于拟合实验数据(在选定波长下监测的石英玻璃中的感应光吸收),这些数据可作为由<γ>辐射和/或被涉及热,光学或伽马射线活化的过程破坏。研究了两种材料系统:(1)掺有Ge掺杂的硅纤芯的光纤和(2)具有低OH /低氯化物纯二氧化硅纤芯的光纤。使用色心浓度N [(kt)β]接近稳态值N的溶液,成功完成了Ge掺杂的硅芯纤维在四个广泛分开的剂量率下生长曲线的成功拟合。 -sat,如t->无限大。这些拟合的参数化揭示了关于分形状态下β,k和N-sat的剂量率依赖性的一些出乎意料且可能有用的经验规则(0 <β<1)。相似(尽管可能不完全相同)的规则显然也适用于纯硅芯纤维的色心。在这两种材料系统中,在某些剂量率阈值下都出现了分形<双左右箭头>经典相变,低于该阈值时,k和N-sat的剂量率相关性恢复为经典规定的那些(β= 1 )一阶或二阶动力学。对于小于1的kt,一阶和二阶分形动力学增长曲线都变得相同,即N((kt)β)近似于At-beta,其中系数A取决于剂量率而不是动力学订购。从经验上发现,在第一级和第二级动力学中,A取决于剂量率的3 beta / 2次幂,因此,在β近似于2/3的情况下,“偶然地”与剂量率成线性比例(随机分形的特征和许多无序的材料)。如果不存在干扰剂量率无关的成分,则可以在分形和经典两种情况下,将动力学的顺序与生长曲线和衰变曲线的形状区分开。但是,出于讨论的原因,成功拟合实验生长曲线的参数不能用作中断照射时记录的衰减曲线形状的封闭形式预测的基础。 [参考:31]

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