Large Signal Gain Effects in Photorefractive Bi12TiO20 at 633 nm

M. Klein, F. Strohkendl, B. Wechsler, G. Brost, J. Millerd, E. Garmire
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Abstract

Bi12TiO20 (BTO) is a photorefractive material in the same structural class (sillenite) as Bi12SiO20 (BSO) and Bi12GiO20 (BGO). However, BTO offers some unique advantages over BSO and BGO: (1) larger electro-optic coefficient (5.7 pm/V)1, and (2) lower optical activity (6°/mm at 633 nm)1, 2. Previous photorefractive measurements3,4 have shown that gain coefficients on the order of 10-15 cm−1 can be produced through the use of an applied AC field. In this work we show that the largest gain values can only be obtained for large values of the pump/probe intensity ratio β. As β approaches unity (large signal regime), higher spatial order gratings become prominent, and the gain is reduced from its large-β value.5−8 Our results are similar to those obtained by other researchers for BSO5 and GaAs6 with an applied field. We have analyzed this and related phenomena using a finite difference method to model the photorefractive grating formation. This method yields accurate numerical solutions which are valid for for all values of β.
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633 nm光折变Bi12TiO20的大信号增益效应
Bi12TiO20 (BTO)是一种与Bi12SiO20 (BSO)和Bi12GiO20 (BGO)具有相同结构类别(硅长石)的光折变材料。然而,与BSO和BGO相比,BTO具有一些独特的优势:(1)更大的电光系数(5.7 pm/V)1,(2)更低的光学活性(633 nm时6°/mm) 1,2。先前的光折变测量表明,通过使用外加交流场可以产生10-15 cm−1量级的增益系数。在这项工作中,我们表明,只有当泵浦/探针强度比β值较大时,才能获得最大的增益值。当β接近单位(大信号域)时,高空间阶光栅变得突出,并且增益因其大β值而降低。5−8我们的结果与其他研究人员在应用领域对BSO5和GaAs6的研究结果相似。我们用有限差分法模拟光折变光栅的形成,分析了这种现象和相关现象。该方法得到的精确数值解对所有β值都有效。
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