原子钟方向博士职位

PhD Studentship: Searching for New Physics with Highly Charged Ion Clocks

The University of Birmingham · 英国 · Birmingham

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研究内容
该项目旨在开发一种基于高电荷离子的新型原子钟,探索超出标准模型的物理
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材料清单
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由 @cf/meta/llama-3.3-70b-instruct-fp8-fast 生成,博士岗判定置信度 100%。

结构化信息

截止
(Europe/London) 剩 70 天
学科
物理与天文
合同类型
雇佣合同
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来源
jobs.ac.uk(英国博士项目及学术招聘) · 最近核对 2026-10-07
判定依据(原文摘录)
  • is_phd
    PhD Studentship
原文

Some of the biggest open questions in modern physics concern the limits of the Standard Model and General Relativity. The nature of dark matter and dark energy remains unknown, and many theories attempting to tackle this problem predict that the fundamental constants may vary in space or time. Atomic clocks provide an exceptionally sensitive way of testing this possibility. Their reach is ultimately determined not only by how precisely they can measure frequency, but also by how strongly their transitions respond to changes in the fundamental constants.

This PhD project aims to develop a new type of atomic clock based on highly charged ions (HCIs). You will work towards the first clock based on highly charged californium (Cf17+), whose exceptional sensitivity to variations of the fine-structure constant makes it a powerful probe of physics beyond the Standard Model. The project will combine HCI production and manipulation with cryogenic ion trapping, laser cooling, precision spectroscopy and quantum-logic techniques. Ultimately, the new clock will be compared with an optical strontium clock to search for temporal variations of the fine-structure constant and signatures of ultralight dark matter and other new physics.

You will join our experimental team at the University of Birmingham, where we have built the UK's first platform for highly charged ions. We have already demonstrated the production, charge selection, transport, trapping and sympathetic cooling of HCIs inside laser-cooled Ca+ Coulomb crystals, providing the experimental foundation for the project. The work will range from producing and trapping Cf17+ to developing quantum-logic spectroscopy and an ultra-stable laser for the clock transition. You will also spend approximately six months with our collaborators at MPIK Heidelberg, contributing to the first precision measurements of the atomic structure of Cf HCIs.

The project will give you hands-on experience across a broad range of experimental physics, including cryogenics, ultra-high vacuum, charged-particle optics, laser cooling, ion trapping, precision laser spectroscopy, quantum logic and atomic-clock technology. It sits at the interface between atomic physics, quantum technology and fundamental physics, with the goal of creating a new precision system capable of probing unexplored regimes of physics beyond the Standard Model.

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