National Hub in High Value Photonic Manufacturing
National Hub in High Value Photonic Manufacturing
批准号:
EP/N00762X/1
负责人:
David Payne
金额:
$1370.15万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2016
资助国家:
英国
项目状态:
未结题
起止时间:
2016 至 --
中文摘要
光电子公司是欧盟六项“关键使能技术”之一。美国最近宣布了一项2亿美元的集成光电子制造计划,以提高其竞争力。作为英国的回应,这里提出的研究将推进英国制造业未来展望报告中确定的未来制造业的普及技术,改善光学传感器、功能材料的可制造性,并在数据传输、处理和存储方面实现节能增长。集成是低成本组件和系统的关键。该中心将解决优化多种跨学科光子平台技术以通过开发低成本制造工艺实现集成的重大挑战。这一主导主题统一了英国光电子(以及启用光电子)行业的要求,我们与40多家公司、弹射器和现有的CIM进行了咨询,证实了这一点。唯一的是,随着英国在光电子领域的强劲投资,我们将目前可用的大多数核心光子平台包括在我们的Hub提案中,这些平台利用了价值2亿GB的洁净室设施。研究将集中在对工业具有最大潜在影响的新兴技术,以及现有光电子技术的长期挑战,在现有光电子技术中,当前的制造工艺阻碍了工业的采用。平台将包括:超材料:超材料的挑战之一是为低成本和高生产能力的制造开发工艺。在实验室生产的先进超材料依赖于缓慢而昂贵的生产过程,如电子束写入,很难大规模或大量生产。为了确保工业在各种实际应用中的应用,需要能够在大范围内形成纳米结构图案的制造方法。南安普敦拥有一个由Zheludev教授领导的领先的超材料小组,并处于有利地位,可以利用目前/未来的EPSRC研究投资,以及其在超材料领域的领先知识产权地位。高性能特殊光纤:尽管已经制造了紫外光和中红外光谱范围的纤维,但由于可靠性、性能、集成度和可制造性问题,目前很少有纤维投入商业使用。该平台将应当前工业合作伙伴的要求,解决用于紫外光、中红外和超高功率电源的特殊纤维的制造可扩展性。根据在激光应用中开发特殊纤维的公司的要求,还将解决与III-V源的集成和包装问题。在更传统的近红外波长体系中,我们将专注于使激光器和系统更便宜、更高效和更可靠的设计和工艺。集成硅光子学:在芯片级别展示的功能方面取得了重大进展。可以说,它是唯一一个可能以低成本提供光学电路功能所需的所有关键组件的完全集成的平台,这无疑是制造业巨头英特尔投资如此之多的原因。关键的挑战仍然是将硅与光纤设备、III-V光源以及晶片级制造的关键组件(如在线测试和测量)集成在一起。该中心包括由Graham Reed教授领导的领先的英国硅光子学小组。III-V设备:在将III-V光源的范围扩展到中IR波长区域方面取得了重大进展,但最大化其影响的关键是通过同时优化III-V和周围技术,使其能够与光纤和其他光子学平台集成。工业需求的初步测绘表明,与针对中期IR优化的超材料组件的集成将是非常可取的。谢菲尔德主办了EPSRC III-V中心,并为Hub增加了强大的发光维度。
英文摘要
Photonics is one of six EU "Key Enabling Technologies. The US recently announced a $200M programme for Integrated Photonics Manufacturing to improve its competiveness. As a UK response, the research proposed here will advance the pervasive technologies for future manufacturing identified in the UK Foresight report on the Future of Manufacturing, improving the manufacturability of optical sensors, functional materials, and energy-efficient growth in the transmission, manipulation and storage of data. Integration is the key to low-cost components and systems. The Hub will address the grand challenge of optimising multiple cross-disciplinary photonic platform technologies to enable integration through developing low-cost fabrication processes. This dominant theme unites the requirements of the UK photonics (and photonics enabled) industry, as confirmed by our consultation with over 40 companies, Catapults, and existing CIMs.Uniquely, following strong UK investment in photonics, we include most of the core photonic platforms available today in our Hub proposal that exploits clean room facilities valued at £200M. Research will focus on both emerging technologies having greatest potential impact on industry, and long-standing challenges in existing photonics technology where current manufacturing processes have hindered industrial uptake. Platforms will include:Metamaterials: One of the challenges in metamaterials is to develop processes for low-cost and high-throughput manufacturing. Advanced metamaterials produced in laboratories depend on slow, expensive production processes such as electron beam writing and are difficult to produce in large sizes or quantities. To secure industrial take up across a wide variety of practical applications, manufacturing methods that allow nanostructure patterning across large areas are required. Southampton hosts a leading metamaterials group led by Prof Zheludev and is well positioned to leverage current/future EPSRC research investments, as well as its leading intellectual property position in metamaterials.High-performance special optical fibres: Although fibres in the UV and mid-IR spectral range have been made, few are currently commercial owing to issues with reliability, performance, integration and manufacturability. This platform will address the manufacturing scalability of special fibres for UV, mid-IR and for ultrahigh power sources, as requested by current industrial partners. Integration with III-V sources and packaging issues will also be addressed, as requested by companies exploiting special fibres in laser-based applications. In the more conventional near-infrared wavelength regime, we will focus on designs and processes to make lasers and systems cheaper, more efficient and more reliable.Integrated Silicon Photonics: has made major advances in the functionality that has been demonstrated at the chip level. Arguably, it is the only platform that potentially offers full integration of all the key components required for optical circuit functionality at low cost, which is no doubt why the manufacturing giant, Intel, has invested so much. The key challenge remains to integrate silicon with optical fibre devices, III-V light sources and the key components of wafer-level manufacture such as on line test and measurement. The Hub includes the leading UK group in silicon photonics led by Prof Graham Reed.III-V devices: Significant advances have been made in extending the range of III-V light sources to the mid-IR wavelength region, but key to maximise their impact is to enable their integration with optical fibres and other photonics platforms, by simultaneous optimisation of the III-V and surrounding technologies. A preliminary mapping of industrial needs has shown that integration with metamaterial components optimised for mid-IR would be highly desirable. Sheffield hosts the EPSRC III-V Centre and adds a powerful light emitting dimension to the Hub.
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Germanate glasses and fibres for 2um lasers and amplifiers
用于 2um 激光器和放大器的德国玻璃和光纤
DOI:
--
发表时间:
2017
期刊:
影响因子:
--
作者:
[Ben Slimen F]
通讯作者:
Ben Slimen F
DOI:
10.1063/1.4999054
发表时间:
2018-01
期刊:
Applied Physics Letters
影响因子:
4
作者:
[Chris Beckerleg;Thomas J. Constant;I. Zeimpekis;S. M. Hornett;C. Craig;D. Hewak;E. Hendry]
通讯作者:
Chris Beckerleg;Thomas J. Constant;I. Zeimpekis;S. M. Hornett;C. Craig;D. Hewak;E. Hendry
DOI:
10.1038/s41598-021-81829-w
发表时间:
2021-03-04
期刊:
Scientific reports
影响因子:
4.6
作者:
[Abbas OA, Lewis AH, Aspiotis N, Huang CC, Zeimpekis I, Hewak DW, Sazio P, Mailis S]
通讯作者:
Mailis S
Phase engineering of tin sulphide grown by atmospheric pressure chemical vapour deposition at ambient temperature
常温常压化学气相沉积生长硫化锡的相工程
DOI:
--
发表时间:
2017
期刊:
影响因子:
--
作者:
[Alzaidy, Ghadah,]
通讯作者:
Alzaidy, Ghadah,
Composite material Hollow Antiresonant Fibers
复合材料空心反谐振纤维
DOI:
10.1364/fio.2016.ftu2i.3
发表时间:
2016
期刊:
影响因子:
--
作者:
[Belardi W]
通讯作者:
Belardi W
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