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Slow Light in Optical Fibers Using Stimulated Brillouin Scattering

Slow Light in Optical Fibers Using Stimulated Brillouin Scattering
利用受激布里渊散射研究光纤中的慢光
批准号:
EP/E029493/1
负责人:
Robert Graham Harrison
金额:
$43.67万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2007
资助国家:
英国
项目状态:
已结题
起止时间:
2007 至 --

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中文摘要
翻译
过去几年的研究已经证实,对光脉冲通过材料系统的传播速度进行特殊控制是可能的。当群速度远远小于光在材料中的相速度时,人们就会说慢光。慢光效应通常利用发生在材料共振附近的折射率的快速变化来延迟光脉冲。对于经典的共振跃迁,问题是这伴随着极大的光吸收。已经提出并使用了各种方案来克服这个问题。其中,电磁感应透明也许是最著名的。对慢光的研究涉及到这种现象的基础科学及其应用,特别是在光通信方面的应用。通信网络的一个基本组成部分是能够缓冲或延迟信息到达的设备。对于超高速操作,希望使用全光器件,其中信息用脉冲编码,需要脉冲延迟数倍于脉冲持续时间,而延迟脉冲的吸收和畸变应相当小。慢光为实现这一目标提供了一种手段。目前对慢光的研究主要集中在寻找与光通信技术更兼容的方案上。2005年,利用受激布里渊散射(SBS)在光纤中展示慢光,因此在世界范围内引发了相当大的活动。由于其明显的器件兼容性,它是一个放大过程而不是吸收过程,因此损耗可以忽略不计;通过改变泵浦波长,可以在任何波长产生慢光共振;光纤允许较长的相互作用长度,因此激光的低功率,该过程在室温下运行,简单易于处理。与此相反,它被认为受到SBS均匀增益线宽~20- 50mhz的限制,这比所需的bbb1ghz要低得多。此外,从经典的SBS理论可以很容易地表明,可以实现的最大脉冲延迟是脉冲持续时间的~1.4,而光通信系统所需的值在2-4范围内。我们在2000年8月首次报道,我们提出的研究利用光纤中波导诱导的SBS光谱增宽现象,以克服当前SBS慢光系统分辨率和脉冲持续时间的经典限制。正如我们已经表明的那样,展宽是光纤中受激布里渊散射的一般特性,并与光纤的数值孔径成比例。传统高数值孔径光纤可达~ 1ghz,光子晶体光纤可达多GHz。这对SBS中的慢光的影响是至关重要的:首先,由于扩展的非均匀性,Stokes信号的脉冲延迟与脉冲持续时间的比值不再受限于1.4的经典限制,其次,由于扩展是巨大的,光脉冲的持续时间可以大大减少,到亚纳秒,提供多gb /s的操作速率。我们将在赫瑞瓦特大学进行一系列实验和理论研究,使用商用光纤和巴斯大学制造的高NA光纤。
英文摘要
Research of the last few years has established that it is possible to exercise extraordinary control of the velocity of propagation of light pulses through material systems. One speaks of slow light when the group velocity is much smaller than the phase velocity of the light in the material. Slow light effects usually make use of the rapid variation of refractive index that occur in the vicinity of a material resonance to delay the optical pulse. For classical resonant transitions the problem is that this is accompanied by extremely large absorption of the light. Various schemes have been proposed and used to overcome this. Of these, electromagnetically induced transparency is perhaps the most well known. Investigations of slow light concern both the basic science of the phenomenon and its applications, particularly in optical communications. A fundamental building block of communications networks is a device that can buffer or delay the arrival of information. For ultra-high speed operation it is desirable to use all-optical devices where information is encoded with pulses for which pulse delays of a few times the pulse duration are required while absorption and distortion of the delayed pulse should be reasonably small. Slow light offers a means to this goal. Research on slow light is currently focused to the search for schemes which are more compatible with optical communications technology. The demonstration, in 2005, of slow light in optical fibre using stimulated Brillouin scattering (SBS) has for this reason sparked considerable activity world-wide. Along with its obvious device compatibility, it is an amplification rather than an absorption process so losses are negligible; the slow-light resonance can be created at any wavelength by changing the pump wavelength; optical fibre allows long interaction length and thus low power for the laser, the process runs at room temperature and is simple and easy to handle. Against this it is thought to be limited by the SBS homogeneous gain linewidth of ~20-50 MHz, which is considerably lower then the >1GHz required. Further it may be readily shown from classical SBS theory that the maximum pulse delay achievable is ~1.4 of the pulse duration, while the value needed in optical communication systems is in the 2-4 range.Our proposed research exploits the phenomenon of waveguide-induced spectral broadening of SBS in optical fibre, we first reported in August 2000, to overcome the classical limit to the resolution and pulse duration of current SBS slow light systems. As we have shown, the broadening is a generic property of stimulated Brillouin scattering in optical fibre and scales with the numerical aperture of the fibre. It may be as great as ~1 GHz in conventional high numerical aperture fibre and multi-GHz in photonic crystal fibres. The consequences of this to the slow light in SBS are critical: firstly because of inhomogeneous nature of the broadening the ratio of the pulse delay to the pulse duration for the Stokes signal is no longer restricted by the classical limit of 1.4, and secondly, because of the broadening is massive the duration of the optical pulses may be greatly reduced, to sub-nanoseconds, providing multi-Gb/s operational rate. We will investigate this experimentally and theoretically with a range of experiments at Heriot-Watt, using both commercially-available optical fibres and high NA fibres fabricated at Bath.
期刊论文(3)
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会议论文
Means for easy and accurate measurement of the stimulated Brillouin scattering gain coefficient in optical fiber.
用于轻松、准确地测量光纤中受激布里渊散射增益系数的方法。
DOI: 10.1364/ol.33.002434
发表时间: 2008
期刊: Optics letters
影响因子: 3.6
作者: [Kovalev VI]
通讯作者: Kovalev VI
"Slow Light" in stimulated Brillouin scattering: on the influence of the spectral width of pump radiation on the group index.
受激布里渊散射中的“慢光”:泵浦辐射的光谱宽度对群指数的影响。
DOI: 10.1364/oe.17.017317
发表时间: 2009
期刊: Optics express
影响因子: 3.8
作者: [Kovalev VI]
通讯作者: Kovalev VI
Effect of acoustic wave inertia and its implication to slow light via stimulated Brillouin scattering in an extended medium.
声波惯性的影响及其通过扩展介质中的受激布里渊散射对减慢光的影响。
DOI: 10.1364/oe.17.002826
发表时间: 2009
期刊: Optics express
影响因子: 3.8
作者: [Kovalev VI]
通讯作者: Kovalev VI
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