PMIC电路设计博士生,负责多级多阶段电力转换器的实时控制
Tyndall National Institute
公司概况
Tyndall国家研究所
爱尔兰科克
2004年
约600名员工(来源: linkedin.com)。该研究所的年研究收入约为4000万欧元,其中包括近年来来自商业、企业和创新部的700万欧元核心资金(来源: wikipedia.org)。
他们的工作
Tyndall国家研究所是爱尔兰领先的深科技研究机构,专注于信息通信技术硬件、光子学、微纳电子学和系统。该研究所积极参与重大研究项目,重点关注能源效率、可再生能源整合、能源存储和气候行动技术(来源: wikipedia.org)。Tyndall的核心技术重点包括光子学、微/纳电子学、材料、半导体和集成系统,强调以信息通信技术为基础的可再生能源整合解决方案,而非直接的硬件开发(来源: tyndall.ie)。该研究所提供研发服务,如半导体晶圆制造、光子集成和系统建模,满足能源效率、智能电网和环境监测等多种应用(来源: monitor-industrial-ecosystems.ec.europa.eu)。
项目与业绩
Tyndall国家研究所参与了多个重要的能源相关项目,包括自2013年左右以来主办国际能源研究中心(IERC),该中心专注于节能、生产、存储和可持续系统的多学科研究(来源: tyndall.ie)。RISEnergy项目从2023年到2026年为各种可再生能源技术提供超过2500天的跨国设施访问,促进了一个69个合作伙伴的欧盟联盟,支持欧洲绿色协议(来源: tyndall.ie)。自2014年以来,Tyndall参与了88个总价值6.3亿欧元的Horizon 2020项目,其中1亿欧元分配给Tyndall及其爱尔兰合作伙伴,展示了其在推动欧盟能源目标方面的重要角色(来源: ecpe.org)。
近期发展
在2025年1月,Tyndall推出了其“Tyndall 2025”五年战略,强调应对气候危机、能源、清洁水、医疗保健和量子技术的深科技解决方案,预计价值数万亿(来源: siliconrepublic.com)。该研究所获得了ISO 50001能源管理认证,通过各种可持续性措施实现了显著的能源节约和二氧化碳减排(来源: cleanenergyministerial.org)。尽管在过去两年中没有报告重大收购或融资轮,Tyndall仍继续参与欧盟项目,并主办IERC进行行业主导的能源研发(来源: siliconrepublic.com)。
在这里工作
在Tyndall国家研究所,职位涵盖研究人员、工程师和专业支持人员,强调跨部门的跨学科合作,如光子系统、能源与气候行动和低功耗电子学(来源: wikipedia.org)。该研究所主要在其科克总部和都柏林数字中心招聘,提供行业合作和博士项目的机会,每年为爱尔兰行业培养新毕业生(来源: tyndall.ie)。Tyndall的文化强调市场驱动研究、知识转移和社会影响的卓越,拥有来自52个国籍的多元化员工(来源: siliconrepublic.com)。虽然没有详细列出具体福利,但该研究所对可持续性和能源效率的关注表明其致力于创造积极的工作环境(来源: cleanenergyministerial.org)。
最后更新于 2月 23, 2026 | 报告问题
Job Description
Tyndall National Institute is an international leader in semiconductors, photonics and deep-tech research and innovation. As a leading collaborative European research institute, Tyndall is a key actor and hosting partner in the delivery of the 'Chips for Europe Initiative' (EU Chips Act).
Tyndall is Ireland's leading research and innovation organisation and it is the national focal point for excellence in deep-tech research, development and graduate training at the convergence of nanotechnology, microelectronics, photonics, electronics and AI. Tyndall is recognised as an international research leader in semiconductor, chip and digital technologies, particularly as applied to the fields of Information & Communications, Health & Life Sciences, Agritech & Food Security, Energy and Climate Mitigation, emerging fields such as quantum, and novel computing paradigms.
The Institute's key objective is to see frontier research activities having a significant impact on economic development and societal challenges in Ireland, Europe and beyond. Central to Tyndall's mission is delivering economic impact through research excellence in partnership with industry and academia. With an annual turnover of more than ???50m, the Institute has a community of over 600 researchers, engineers, support staff, postgraduate students, interns and industry researchers-in-residence.
With significant committed Irish government support, Tyndall will grow to be 1,000 people by 2030, with approximately 750 researchers, including 250 PhD students. A new 17,000 m2 research building is under development adjacent to the Cork headquarters and there are developing plans to expand Tyndall's existing Dublin research labs and to establish other research sites within Ireland.
Tyndall's expansion is also supported by recent national and EU funding wins for significant (M???10's) additional research equipment across a range of areas such as semiconductor processing, microscopy, quantum technologies, heterogeneous integration, ultra-high speed optical communications and RF through THz characterisation.
About the Team
MCCI is Ireland's national Microelectronics Circuits Research Centre. Hosted by Tyndall Research Institute MCCI has a large team of researchers in silicon chip design, at various stages of their careers, from PhD researcher through to Principal Researcher and all are creating world leading, innovative and high impact technologies, which will shape our future lives. Specifically, MCCI's mission is to carry out industry-driven, excellent research in areas such as Analog Precision Circuits, RF and High-Speed Transceivers, Cryogenic CMOS and Integrated Power Systems research.
Analog Devices Inc. (ADI) is the world's largest Integrated Device Manufacturer (IDM) in the power management field. Analog Devices is sponsoring two prestigious PhD research scholarships in CMOS Power Control ICs, based at MCCI's office at Tyndall National Institute Cork Ireland. Power and energy control are now defining the fundamental performances achievable in every single electronic system, from the RF powered medical implant through to the AI accelerator in the data-centre server. These positions will position the researcher at technology curve edge and be valuable to a diverse range of career areas.
About the Role
Generally, the power systems in every electronics hardware system or device are undergoing a number of major technology paradigm shifts, which is making power control central to achieving the continued performance improvements, which we expect in this "more than Moore" era.
From the grid AC electricity connection to the end application, there are typically five stage of power conversion. Powering architectures, such as those being architected through the Open Compute Project are changing so that end-to-end efficiency can be pushed into the high eighties, per cent. AT no-load standby and lighter loads, the goal is to design control modes so that every stage maintains maximum efficiency and minimum quiescent control power. The key application SoC, ASIC, CPU, MCU, AI Accelerator or GPU in every application is moving to a very fine geometry CMOS node with high digital gate leakage. The last stage of power conversion - the VR voltage regulator - is becoming highly integrated and splitting into hundreds of highly dynamic rails, which power application CMOS circuit blocks on and off precisely as required to implement fine-grained power delivery.
Driving this trend for a huge number of last-stage highly dynamic rails, also, is the tendency for applications to go multi-core - presently eight cores for a mobile phone and hundreds of cores in a computer server. These highly integrated rails deliver up to 20 A/ns and having very little local input decoupling (reservoir) capacitance, they push are pushing the requirement for high dynamic performance up-stream to other stages in the powering architecture, such as the 48 V - 5/12 V DC-DC modules. These modules, in themselves have recently migrated from 12 V input to 48 V input, to reduce distribution current RI2 power loss in system PCB traces. To "break" this voltage or converter it through a large down conversion ratio, there are a variety of emerging new multi-stage topologies combining switched capacitor stages with traditional switch-mode inductor-based stages. These new power topologies are achieving very high efficiencies and with their cascade of smaller inductor and capacitor energy storage elements, have the as yet, unrealised potential to achieve very high dynamic performances. These complimentary PhD research themes are specifically about innovating in the power control and management ICs for DC-DC converters, specifically with the goals of bringing high dynamic performance to hybrid multi-stage, multi-level flying capacitor (FCML) or hybrid resonant switched capacitor (ReSC) DC-DC converter.
PhD #1 Suggested Research Area
- High dynamic performance controller for multi-level, multi-stage FCML or ReSC. It is anticipated that a monolithic multi-level converter with high performance mixed-signal controller will be created. The controller will incorporate the best elements of today's non-linear, linear time invariant (LTI) and discrete time (DTLTI) control techniques to achieve accurate, highly dynamic, competitive and highly efficient power control over all loads.
PhD #2 Suggested Research Area
- Traditionally, switch mode converter controllers have been voltage-mode or current mode and have been classical PID or PI, respectively to control state-space averaged linear time invariant (LTI) system representations. There have been analog and digital (discrete time) versions. These systems achieve closed-loop control over the load voltage, dynamic set-point tracking and maintain fixed switching frequency for output noise spectrum control, but at the expense of high bandwidth ADCs, amplifiers and modulators. The challenges of achieving fast transient responses, high efficiency overload, lower CMOS complexity and area implementations resulted in a variety of non-linear hysteretic controllers, with varieties of constant on-time (COT), fixed-off time (FOT), adaptive on-time AOT, according to achieve various goals such as good line rejection. These controllers achieve lower cost implementations but have the drawbacks of variable switching frequency and some unpredictable output voltage ripples. More recently linear controllers are emerging which show promise with implementing time domain controllers using time, instead of voltage as the processed signal, using voltage controlled oscillators (VCOs) and voltage controlled delay lines (VCDLs). These controllers have digital type signals with CMOS 0-1 voltage levels. The research goal is to combine the best attributes of functionality implementations from the variety of control schemes to realise high performance control with low area digital type CMOS implementations which are substantially auto synthesisable and transferrable across CMOS geometries and achieve high dynamic performance, maintain over-load efficiency and generate controlled noise spectra. In short, the objective is to create low cost, synthesisable controller schemes, which deliver the performances associated with last stage VR controllers.
Key Responsibilities
- Complete your PhD research degree in high dynamic performance, real-time CMOS power management (PMIC). Your research will significantly advance the state-of-the-art from both research and commercial perspectives.
- Complete mixed-signal PMIC integrated circuit prototypes ("test chips") from concept, circuit design through silicon layouts, tape-out and silicon test characterization in the Design evaluation laboratory. These test chips will implement a complete integrated switch-mode power system including power path, gate drives and control, to showcase the noteworthy advancements made by your research.
- Perform experimental test characterisation of your stand-alone prototype PMIC test chips to showcase your advances in mixed-signal, high dynamic performance, real time power control as applied to select power topologies.
- Author or co-author peer-reviewed publications of international standing
- Engage in the dissemination of the results of the research, in other fora, as directed by and in conjunction with senior MCCI research staff. There will be presentations for in-house and company internal conferences.
- Manage/participate in education and public outreach engagement activities, as required.
- Ensure all activities are compliant with MCCI Processes and the Tyndall Quality Management System
- Carry out any additional duties as may reasonably be required within the general scope and level of the post.
About You
- You will be ambitious to achieve a high-quality research PhD through publications in pre-eminent tier 1 conferences and journals from University College Cork
- You plan to dedicated to a strong technical career in the area of power management with advanced digital control
Essential Criteria
- The ideal applicant will have a 1st class honours degree in electronic engineering or related discipline.
- Evidence of a strong desire to innovate and pursue advanced research.
- Evidence of being highly analytical, with good interpersonal and organisational skills
- Strong fundamental knowledge in core disciplines such as engineering mathematics, analog circuits, control systems theory and power electronic systems
- Strong technical writing and communications skills
Desirable Criteria
- Master's Degree in a relevant research area in electronics
- Specialised modules at under-graduate level in CMOS IC design, power electronics, control system design or digital signal processing
- Good understanding of switch-mode converter design and magnetic component operation
- Good understanding of continuous and discrete time controller design methodologies
- Experience with mixed-signal IC design
- Experience with mathematical modelling tools, such as MATLAB or Python
- Experience with integrated circuit design tools, such as Cadence/ Mentor
What we offer
- You will have the opportunity to pursue your research to the highest level in a world-class CMOS technology design center that has a young, dynamic, vibrant and self-driven research environment. You will be part of a large, collegial and supportive team of researchers at all levels of experience and across a variety of relevant disciplines, such as thin-film magnetics, signal processing and data-converters.
- There will be a 6-month internship at Analog Devices Ireland Design Centre Office at the beginning of the PhD period.
- There is an excellent research environment, which is co-located with many world leading research groups, such as Tyndall's Integrated Magnetics group. Tyndall Research Institute and MCCI together host over 500 researchers, with approximately 150 pursuing PhD research.
- These PhD research themes are of strong strategic relevance to the sponsoring company and as such there will be access to company expertise, through means such as internal corporate technical conferences or internship at an ADI site.
- Great career development and advancement that is highly visible to the semiconductor industry through direct contact with the sponsoring company, other MCCI member companies' base and through IEEE publications and conferences.
- Opportunities to publish and present at the leading conferences such as IEEE Solid-State Circuits conferences will be very strongly supported and indeed will be your primary focus
- Attend training courses and workshops, use the latest industry CAD design tools
- A generous tax-free scholarship stipend payment including tuition fees covered
- 20 days per annum annual leave for full-time research students, in addition to public holidays.
- Full coverage of travel expenses to international conferences to present project outcomes.
- Training and development opportunities are also provided.
- Mardyke Sports Arena -Students - free when registered with UCC
- Free Park and Ride Service
Terms of Studentship
Contract : Full Time/ Fixed Term
The annual stipend is ???25,00.00 for 4 years. In addition, annual tuition fees will be paid by the Tyndall National Institute.
Informal enquiries can be made in confidence to Hugo Cruz and John Morrissey.
立即申请
职位已过期?请告知 Tyndall National Institute 您是在 Rejobs 上找到这份工作的。这将帮助我们成长,并让更多人投身于可再生能源工作!
立即申请
职位已过期?请告知 Tyndall National Institute 您是在 Rejobs 上找到这份工作的。这将帮助我们成长,并让更多人投身于可再生能源工作!
获取工作提醒
获取爱尔兰,科克地区电力电子领域职位的提醒
加入人才库
让顶尖清洁能源雇主找到你
职位详情
2026年5月5日
博士职位
非营利
- 爱尔兰,科克
PhD level research
UTC+01:00