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A monolithically integrated infrared quantum dot laser for silicon photonics

A monolithically integrated infrared quantum dot laser for silicon photonics
用于硅光子学的单片集成红外量子点激光器
批准号:
478954-2015
负责人:
Sargent, Edward
金额:
$13.16万
依托单位:
依托单位国家:
加拿大
项目类别:
Strategic Projects - Group
财政年份:
2017
资助国家:
加拿大
项目状态:
已结题
起止时间:
2017-01-01 至 2018-12-31

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中文摘要
翻译
云计算将彻底改变数据共享、人们互动、社会形成和经济财富产生的方式。对云的操作至关重要的是数据中心形式的大规模计算设施。云应用数据中心的能源需求目前达到每年220太瓦时。为了既环保又经济地维持这种能量,每比特的功耗必须从目前的皮焦耳范围大幅降低到飞焦耳。当今低效的数据传输架构在数据中心产生了大量的废热。因此,数据中心消耗的很大一部分电力用于冷却,使数据中心的能源使用效率非常低。我们提出了一个项目,该项目将使用于节能光通信的光源集成到硅集成电路上,从而促进数据中心的功耗大幅降低。理想情况下,将电数据转换为光信号发生在硅光子芯片上,并包括处理信号并通过光互连将其传输到片外的元件。这种芯片上的关键部件之一是相干光源(即激光)。目前用于此目的的激光器是通过直接连接的方式连接到芯片上的,这种技术对于数据传输并不理想,因为它可能导致显著的功率损失。我们建议开发一种全新类型的激光器,可以从溶液中加工并直接沉积到硅光子芯片上,从而产生迄今为止最节能的数据传输架构。我们将与全球电信行业的领导者华为加拿大公司密切合作,设计芯片,利用我们的激光器实现超过10gb /s的数据传输速率。新的高素质人才将直接与华为的研究人员一起工作,以深入了解全球应用技术公司的先进研发。
英文摘要
Cloud computing will revolutionize how data are shared, people interact, societies are formed and economic wealth is generated. Essential to the operation of the cloud are large scale computing facilities in the form of datacenters. The exploding energy demands of datacenters for cloud applications currently reach 220 TWh per year. To sustain such energies environmentally and economically, the power consumption per bit must be drastically reduced from the current picojoule range into the femtojoules. Today's inefficient data transfer architectures generate a vast quantity of waste heat in datacenters. As a consequence, a large portion of the power consumed by datacenters is used for cooling, making the datacenters highly inefficient in energy usage. We propose a project that will enable the integration of light sources for energy-efficient optical communication onto silicon integrated circuits, thereby facilitating a dramatic reduction in power consumption by data centers. Conversion of electrical data into optical signals ideally occurs on a silicon photonic chip and includes elements to process signals and convey them off-chip through optical interconnects. One of the key components on such a chip is a coherent light source (i.e. a laser). The lasers currently used for this purpose are attached to the chip by means of direct bonding - a technique that is not ideal for data transmission as it can result in significant power loss. We propose to develop an entirely new type of laser that can be processed from solution and deposited directly onto a silicon photonic chip, resulting in the most energy-efficient data transfer architectures yet developed. We will work closely with Huawei Canada, a world leader in the telecommunications industry, to design chips that will utilize our laser to realize data transfer rates in excess of 10 Gb/s. New highly qualified personnel will work directly with researchers at Huawei to gain a thorough understanding of advanced research and development in a global application-oriented technology company.
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