论文标题
噪声和结构对量子记忆中编码的量子信息的影响
Impacts of Noise and Structure on Quantum Information Encoded in a Quantum Memory
论文作者
论文摘要
随着在量子信息应用程序(例如量子计算和量子通信)中构建和证明较大,更高质量的量子设备,因此需要高质量的量子记忆来存储量子状态的需求变得越来越紧迫。未来的量子设备可能会使用各种物理硬件,有些设备主要用于处理量子信息,而另一些则用于存储。在这里,我们研究了量子信息结构与各种可能的量子内存实现的物理噪声模型的相关性。通过对不同噪声模型和应用于各种有趣的量子状态的近似分析公式的数值模拟,我们提供了具有不同结构的量子硬件(包括基于Qudit和Qudit的量子记忆)之间的比较。我们的发现指出,对于不同量子记忆中量子信息的相对寿命,简单,实验相关的公式,与混合量子设备的设计相关。
As larger, higher-quality quantum devices are built and demonstrated in quantum information applications, such as quantum computation and quantum communication, the need for high-quality quantum memories to store quantum states becomes ever more pressing. Future quantum devices likely will use a variety of physical hardware, some being used primarily for processing of quantum information and others for storage. Here, we study the correlation of the structure of quantum information with physical noise models of various possible quantum memory implementations. Through numerical simulation of different noise models and approximate analytical formulas applied to a variety of interesting quantum states, we provide comparisons between quantum hardware with different structure, including both qubit- and qudit-based quantum memories. Our findings point to simple, experimentally relevant formulas for the relative lifetimes of quantum information in different quantum memories and have relevance to the design of hybrid quantum devices.