首页> 外文期刊>Applied optics >OPTICAL PARAMETRIC AMPLIFIERS - A DISCRETE DYNAMICAL MODEL OF SINGLY RESONANT OPERATION LEADING TO A NOVEL APPROACH TO THE DESIGN OF SYSTEMS FOR HIGH-EFFICIENCY AMPLIFICATION
【24h】

OPTICAL PARAMETRIC AMPLIFIERS - A DISCRETE DYNAMICAL MODEL OF SINGLY RESONANT OPERATION LEADING TO A NOVEL APPROACH TO THE DESIGN OF SYSTEMS FOR HIGH-EFFICIENCY AMPLIFICATION

机译:光学参数放大器-单共振工作的离散动力学模型,为高效放大系统的设计提供了新的途径

获取原文
获取原文并翻译 | 示例
           

摘要

A simple plane-wave model of pulsed, singly resonant, optical-parametric-oscillator and optical-parametric-oscillator-amplifier operation leads to a description of such systems in terms of a discrete dynamical system. The theoretical limits on conversion efficiencies derivable from this model were explored. Analysis of the model for an optical parametric oscillator-amplifier (OPOA) indicates that the effect that backconversion has in limiting efficiency can be avoided if one precisely shapes the time profile of the pump pulse and combines it with an OPOA that is Q switched. For a case of type I phase matching with beta-barium berate with a specific pump profile and a 65-mJ input pulse, under the assumption of small absorption, the following are demonstrated: (1) the theoretical possibility of amplification to a few joules at quantum efficiencies higher than 90% and (2) the possibility of amplification to approximately 1J at an energy efficiency near 45% in a configuration satisfying realistic stress constraints. Pulse widths are in the nanosecond range, and spot sizes are in the millimeter range. Issues of implementation are discussed. [References: 19]
机译:脉冲,单谐振,光参量振荡器和光参量放大器的简单平面波模型可以用离散动态系统来描述此类系统。探索了从该模型得出的转换效率的理论极限。对光参量振荡器放大器(OPOA)的模型的分析表明,如果精确地塑造泵浦脉冲的时间曲线并将其与Q开关的OPOA组合在一起,就可以避免反向转换对极限效率的影响。对于具有特定泵浦曲线且输入脉冲为65 mJ的I型相位与β-钡酸钡相匹配的情况,在小吸收的假设下,可以证明以下几点:(1)理论上可以放大到几焦耳的可能性当量子效率高于90%时,以及(2)在满足实际应力约束的配置中,在能量效率接近45%时放大到大约1J的可能性。脉冲宽度在纳秒范围内,光点大小在毫米范围内。讨论了实施问题。 [参考:19]

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号