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Optical Communication in the Quantum Limit: Noise-Free Optical Amplifiers and Taps

Optical Communication in the Quantum Limit: Noise-Free Optical Amplifiers and Taps
量子极限中的光通信:无噪声光放大器和分路器
批准号:
9634542
负责人:
Larry Coldren
金额:
$0.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-04-15 至 2000-12-31

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中文摘要
翻译
9634542孩子们,光纤通信系统的性能从根本上受到光放大和分接过程中的量子力学波动的限制。可达到的最小总噪声受海森堡最小不确定度积的限制。这项拟议工作的目标是开发能够绕过量子力学限制的光电子器件。这是通过重新分配观测中的不确定性来实现的,从而使系统性能的关注量表现出最小的噪声。同时,共轭能观量的噪声也得到了增强。通过光子数放大器和抽头,以光信号的强度编码的信息可以被放大和测量,而不确定度非常小,而位相信息被破坏并变得完全不确定。拟议的工作将侧重于制造实用的半导体器件,使其能够实现几乎无噪音的放大以及信息窃听和产生。该项目的成功依赖于制造和集成不同配置的高量子效率半导体激光器的能力。除了制造方面的努力外,这些器件的低量子噪声特性的实验验证将是相当大的工作。我们建议演示的无声抽头和放大器预计将在需要在许多订户之间共享信息的应用程序中产生强大影响。光互连和局域网中的情况就是这样:如果实现这里开发的设备,每个用户将能够测量、放大和再生进一步使用的信息,而不会降低信号质量。此外,这些设备的多功能性,包括将一个信号克隆到许多量子相关副本中的可能性,以及自由选择后者的发射波长的可能性,在空间和波分复用应用中可能是有吸引力的。***
英文摘要
9634542 Coldren The performance of fiber-optic communications systems is fundamentally limited by quantum mechanical fluctuations in the processes of amplification and tapping of light. The minimum attainable total noise is limited by Heisenberg's minimum uncertainty product. The goal of the proposed work is the development of optoelectronic devices that would circumvent the quantum mechanical limits. This is done by the redistribution of the uncertainty in the observables such that the quantity of interest for the system performance exhibits a minimum noise. At the same time the noise of the conjugate observable is enhanced. By means of photon number amplifiers and taps, the information encoded in the intensity of an optical signal can be amplified and measured with very little uncertainty at the expense of phase information which is destroyed and becomes totally uncertain. The proposed work will emphasize the fabrication of practical semiconductor devices that will allow for virtually noiseless amplification and information tapping and generation. The success for this project relies on the ability to fabricate and integrate different configuration of high quantum efficiency semiconductor lasers. In addition to the fabrication efforts, considerable work will reside in the experimental verification of the low quantum noise properties of these devices. Noiseless taps and amplifiers that we propose to demonstrate are expected to have a strong impact in applications where information needs to be shared among many subscribers. This is the case in optical interconnects and local-area networks: If the devices developed here are implemented, each subscriber will be able to measure, amplify, and regenerate the information of further use without degrading the signal quality. Further, the versatility of these devices, which includes the possibility of cloning a signal into many quantum correlated copies, and the possibility of choosing freely the emission wavelength of the latter, may be attractive in space- and wavelength-division multiplexing applications. ***
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