Completed Physics & Astronomy Materials & Manufacturing

UK Silicon Photonics

In plain English

AI plain-English summary

Five UK universities are joining forces to design and build silicon-based optical devices that could replace copper wires inside computers and data centres. The problem is straightforward: as computer chips get faster and more powerful, the metal wires connecting them become a bottleneck. Electrical signals slow down, generate heat, and waste energy. Light signals—photons—can carry far more data with far less power, but building optical components from silicon, the standard material for microchips, has been difficult. This consortium aims to solve that by designing, fabricating, and testing a full suite of silicon photonic devices: modulators, filters, detectors, amplifiers, and couplers that link optical fibres to tiny silicon waveguides. They will then integrate these optical components directly with electronics. If the research succeeds, the impact would be felt in systems most people never see. Data centre interconnects, fibre-to-the-home broadband, and high-performance computing could all become faster and cheaper. Because silicon fabrication is already mass-produced at enormous scale by the semiconductor industry, any breakthrough here could be manufactured cheaply and reliably. The work targets the global market for optical interconnects, which the MIT Communications Technology Roadmap estimates could generate $20 billion in annual revenue.

View original technical description
Silicon Photonics is a field that has seen rapid growth and dramatic changes in the past 5 years. According to the MIT Communications Technology Roadmap, which aims to establish a common architecture platform across market sectors with a potential $20B in annual revenue, silicon photonics is among the top ten emerging technologies. This has in part been a consequence of the recent involvement of large semiconductor companies in the USA such as Intel and IBM, who have realised the enormous potential of the technology, as well as large investment in the field by DARPA in the USA under the Electronic and Photonic Integrated Circuit (EPIC) initiative. Significant investment in the technology has also followed in Japan, Korea, and to a lesser extent in the European Union (IMEC and LETI). The technology offers an opportunity to revolutionise a range of application areas by providing excellent performance at moderate cost due primarily to the fact that silicon is a thoroughly studied material, and unsurpassed in quality of fabrication with very high yield due to decades of investment from the microelectronics industry. The proposed work is a collaboration between 5 UK Universities (Surrey, St. Andrews, Leeds, Warwick and Southampton) with input from the industrial sector both in the UK and the USA. We will target primarily the interconnect applications, as they are receiving the most attention worldwide and have the largest potential for wealth creation, based on the scalability of silicon-based processes. However, we will ensure that our approach is more broadly applicable to other applications. This can be achieved by targeting device functions that are generic, and introducing specificity only when a particular application is targeted. The generic device functions we envisage are as follows: Optical modulation; coupling from fibre to sub-micron silicon waveguides; interfacing of optical signals within sub micron waveguides; optical filtering; optical/electronic integration; optical detection; optical amplification. In each of these areas we propose to design, fabricate, and test devices that will improve the current state of the art. Subsequently we will integrate these optical devices with electronics to further improve the state of the art in optical/electronic integration in silicon.We have included in our list of objectives, benchmark targets for each of our proposed devices to give a clear and unequivocal statement of ambition and intent.We believe we have assembled an excellent consortium to deliver the proposed work, and to enable the UK to compete on an international level. The combination of skills and expertise is unique in the UK and entirely complementary within the consortium. Further, each member of the consortium is recognised as a leading international researcher in their field.The results of this work have the potential to have very significant impact to wealth creation opportunities within the UK and around the world. For example emerging applications such as optical interconnect, both intra-chip, and inter-chip, as well as board to board and rack to rack, and Fibre To The Home for internet and other large bandwidth applications, will require highly cost effective and mass production solutions. Silicon Photonics is a seen as a leading candidate technology in these application areas if suitable performance can be achieved.

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Researchers

Charles Free (Co-Investigator)Goran Mashanovich (Co-Investigator)Graham Reed (Principal Investigator)Ortwin Hess (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Silicon Photonics for Future Systems
Parallel Heterogeneous Integration of III-V Devices on Silicon Photonic Chips
Towards a revolution in optical communications
Cornerstone 2.5
Perovskite Photonics

Original classification

Research Grant

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