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Soliton Solutions for High-Bandwidth Optical Pulse Storage and Retrieval.

机译:用于高带宽光脉冲存储和检索的孤子解决方案。

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摘要

Quantum-optical information processing in material systems requires on-demand manipulation and precision control techniques. Previous implementations of optical pulse control have mostly been limited to weak, narrowband probe fields, often using a modified form of Electromagnetically Induced Transparency (EIT). We propose optical pulse control in a contrasting regime with high-bandwidth optical pulses, enabling higher clock-rates and on-demand fast pulse switching. Our novel solutions exploit the coherent interaction between short, strong pulses and resonant media (such as a cloud of ultra-cold atoms) to store, manipulate, and retrieve high-bandwidth optical pulse information.;The evolution equations that model such short pulse propagation are inherently nonlinear and they govern both amplitudes and phases of the propagating field and the dielectric medium. They cannot be modeled by population rate equations or simplified with steady-state assumptions. Nonlinear evolution equations do not yield solutions easily and using them to characterize the physics at hand typically requires complementary analytical and numerical approaches. We take both approaches here, using analytical methods and our own numerical integration code. For uniform and infinitely extended media we generate novel three-pulse soliton solutions: robust, nonlinear waves with the unique property of preserving their shape under interaction (or "collision"). This important property enables one high-bandwidth soliton to push another from one location in an atomic cloud to another, predictably and nondestructively.;We then also probe the practical utility of our specialized infinite-extent solutions by numerically solving the same nonlinear evolution equations for a variety of initial pulse shapes and strengths. Our numerical simulations confirm that our novel soliton solutions provide appropriate control parameters, including pulse storage locations and pulse sequencing, even in finite media under non-idealized initial conditions. Combining our numerical and analytic results, we propose a scheme to manipulate high-bandwidth optical information and achieve on-demand, high-fidelity retrieval.
机译:材料系统中的量子光学信息处理需要按需操纵和精确控制技术。以前,光脉冲控制的实现方式大多限于微弱的窄带探测场,通常使用电磁感应透明度(EIT)的改进形式。我们建议在与高带宽光脉冲形成对比的情况下进行光脉冲控制,以实现更高的时钟速率和按需快速脉冲切换。我们的新颖解决方案利用短而强的脉冲与共振介质(例如超冷原子云)之间的相干相互作用来存储,操纵和检索高带宽光脉冲信息。固有地是非线性的,它们控制着传播场和介电介质的振幅和相位。它们无法通过人口率方程建模或无法通过稳态假设简化。非线性演化方程不容易得出解,并且使用它们来表征当前的物理特性通常需要互补的分析和数值方法。我们在这里采用分析方法和我们自己的数值积分代码来采用这两种方法。对于均匀且无限扩展的介质,我们生成新颖的三脉冲孤子解:健壮的非线性波,具有在交互作用(或“碰撞”)下保持其形状的独特属性。这一重要特性使一个高带宽孤子能够将另一个从原子云中的一个位置以可预测的方式无损地推到另一个位置;然后我们还通过数值求解相同的非线性演化方程来探究我们专用的无限范围解的实用性。各种初始脉冲形状和强度。我们的数值模拟证实,即使在非理想化初始条件下的有限介质中,我们新颖的孤子解决方案也提供了适当的控制参数,包括脉冲存储位置和脉冲排序。结合我们的数值和解析结果,我们提出了一种处理高带宽光学信息并实现按需,高保真检索的方案。

著录项

  • 作者

    Groves, Elizabeth.;

  • 作者单位

    University of Rochester.;

  • 授予单位 University of Rochester.;
  • 学科 Applied Mathematics.;Physics General.;Physics Quantum.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 122 p.
  • 总页数 122
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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