Trapped Antihydrogen - Towards Spectroscopy

被捕获的反氢 - 走向光谱学

基本信息

  • 批准号:
    EP/D040108/1
  • 负责人:
  • 金额:
    $ 135.54万
  • 依托单位:
  • 依托单位国家:
    英国
  • 项目类别:
    Research Grant
  • 财政年份:
    2006
  • 资助国家:
    英国
  • 起止时间:
    2006 至 无数据
  • 项目状态:
    已结题

项目摘要

Antihydrogen, the bound state of a positron and an antiproton, has recently been created under controlled conditions in the laboratory. The proposal seeks to build upon this by creating and trapping very cold antihydrogen using a magnetic gradient trap. This is an arrangement of magnetic fields that acts upon the small magnetic moment of the antiatom to produce a trapping force. However, such traps are shallow, and are currently only capable of holding neutral species with kinetic energies equivalent to a temperature below 1 Kelvin. To trap antihydrogen efficiently it must be produced at this temperature, or below. This requires several major changes and upgrades to our apparatus. These include a complete new magnet and cryogenic system, an octupole coil arrangement for the neutral trap, a new antihydrogen annihilation detector and upgrades to the performance of the positron accumulator. These changes are very technical in nature and the detailed case for support seeks to explain and justify them. However, all experiments with antihydrogen are difficult, so the question we address here is; why bother? We will explain this using the example of symmetry.It has been apparent for a while that fundamental asymmetries are hidden deep within nature. For example, in the 1950's it was discovered that the weak nuclear interaction violates parity conservation. However, the defective parity mirror can be mostly repaired by adding so-called charge conjugation, which, loosely speaking, means that interactions are unaffected when every particle is substituted by its antiparticle. For a while it was believed that the laws of nature would obey the combination of parity reversal and charge conjugation. But by the mid-1960's this was found to be untrue for a small class of reactions involving unusual, fleeting, particles called K-mesons. Since then it has been assumed that the small blemish in the combined charge conjugation/parity reversal mirror can be corrected by the application of time-reversal.However, this 3-way switch differs from the three discrete symmetries, or any 2-way combination of them because the charge/parity/time combination exists as a theorem that can be proved using the basic postulates of quantum field theory. Such theories are the cornerstone of our current understanding of the Universe, but are widely recognised as being incomplete. So testing this unique 3-way switch is going to the heart of our understanding of nature. Our current picture of the beginning of the Universe involves the Big Bang, which is thought to have been an energetic event that created equal amounts of matter and antimatter. Why then did they not all annihilate one another and leave a Universe devoid of matter? Searches for large amounts of remnant antimatter in the Universe, have failed to find any trace. Currently it is thought that our Universe is matter dominant; in other words asymmetric. The other fact to add to this is that the amount of asymmetry we can currently identify via numerous studies of fleeting and rare particles isn't enough to explain the existence of the material Universe.
反氢,一个正电子和一个反质子的结合状态,最近在实验室的受控条件下被创造出来。该提案试图在此基础上,利用磁梯度阱创造并捕获非常冷的反氢。这是一种磁场的排列,作用于反原子的小磁矩,产生捕获力。然而,这种陷阱很浅,目前只能容纳动能相当于温度低于1开尔文的中性物质。为了有效地捕获反氢,它必须在这个温度或更低的温度下产生。这需要对我们的设备进行几项重大更改和升级。其中包括一个全新的磁铁和低温系统,一个中性陷阱的八极线圈安排,一个新的反氢湮灭探测器和升级的正电子蓄能器的性能。这些变化在本质上是非常技术性的,详细的支持案例试图解释和证明它们的合理性。然而,所有的反氢实验都很困难,所以我们在这里要解决的问题是;何苦呢?我们将用对称的例子来解释这一点。很明显,一段时间以来,基本的不对称隐藏在大自然深处。例如,在20世纪50年代,人们发现弱核相互作用违反宇称守恒。然而,有缺陷的宇称镜大多可以通过添加所谓的电荷共轭来修复,粗略地说,这意味着当每个粒子都被它的反粒子取代时,相互作用不会受到影响。有一段时间,人们相信自然定律会服从宇称反转和电荷共轭的结合。但到了20世纪60年代中期,人们发现,对于一小类涉及罕见的、转瞬即逝的粒子k介子的反应来说,这是不正确的。从那时起,人们就假设复合电荷共轭/宇称反转镜中的小缺陷可以通过应用时间反转来纠正。然而,这种三向开关不同于三种离散对称,或者它们的任何双向组合,因为电荷/奇偶性/时间组合作为一个定理存在,可以使用量子场论的基本假设来证明。这些理论是我们目前对宇宙理解的基石,但被广泛认为是不完整的。所以测试这种独特的三向开关是我们对自然理解的核心。我们目前对宇宙起源的理解涉及到大爆炸,大爆炸被认为是一个能量事件,产生了等量的物质和反物质。那么,为什么它们没有彼此湮灭,留下一个没有物质的宇宙呢?对宇宙中大量残余反物质的搜索,未能找到任何痕迹。目前,人们认为我们的宇宙是物质主导的;换句话说就是不对称。另一个需要补充的事实是,我们目前通过大量对稍纵即逝的稀有粒子的研究发现的不对称性,还不足以解释物质宇宙的存在。

项目成果

期刊论文数量(10)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
Antihydrogen accumulation for fundamental symmetry tests.
  • DOI:
    10.1038/s41467-017-00760-9
  • 发表时间:
    2017-09-25
  • 期刊:
  • 影响因子:
    16.6
  • 作者:
    Ahmadi M;Alves BXR;Baker CJ;Bertsche W;Butler E;Capra A;Carruth C;Cesar CL;Charlton M;Cohen S;Collister R;Eriksson S;Evans A;Evetts N;Fajans J;Friesen T;Fujiwara MC;Gill DR;Gutierrez A;Hangst JS;Hardy WN;Hayden ME;Isaac CA;Ishida A;Johnson MA;Jones SA;Jonsell S;Kurchaninov L;Madsen N;Mathers M;Maxwell D;McKenna JTK;Menary S;Michan JM;Momose T;Munich JJ;Nolan P;Olchanski K;Olin A;Pusa P;Rasmussen CØ;Robicheaux F;Sacramento RL;Sameed M;Sarid E;Silveira DM;Stracka S;Stutter G;So C;Tharp TD;Thompson JE;Thompson RI;van der Werf DP;Wurtele JS
  • 通讯作者:
    Wurtele JS
The ALPHA antihydrogen trapping apparatus
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Paul Nolan其他文献

Climate change impact and adaptation assessment for road drainage systems.
道路排水系统的气候变化影响和适应评估。
  • DOI:
    10.1016/j.jenvman.2024.121209
  • 发表时间:
    2024
  • 期刊:
  • 影响因子:
    8.7
  • 作者:
    Jingyu Wang;Enda O'Brien;Paul Holloway;Paul Nolan;Mark G. Stewart;P. Ryan
  • 通讯作者:
    P. Ryan
Difference, diversity and difficulty: problems in adult peace education in Northern Ireland
差异、多样性和困难:北爱尔兰成人和平教育的问题
  • DOI:
  • 发表时间:
    2007
  • 期刊:
  • 影响因子:
    0
  • 作者:
    Paul Nolan
  • 通讯作者:
    Paul Nolan
High Frequency Chest Wall Oscillation for Atelectasis in Infants and Toddlers: A Case Series Report
  • DOI:
    10.1378/chest.1992204
  • 发表时间:
    2014-10-01
  • 期刊:
  • 影响因子:
  • 作者:
    Paul Nolan;Hari Gourabathini;Chau Tran;Saloni Paudel;Elena Romero
  • 通讯作者:
    Elena Romero
Impacts of projected future changes in precipitation on wastewater treatment plant influent volumes connected by combined sewer collection systems
  • DOI:
    10.1016/j.cliser.2024.100511
  • 发表时间:
    2024-08-01
  • 期刊:
  • 影响因子:
  • 作者:
    Sukanya D. Saikia;Paraic Ryan;Siegmund Nuyts;Paul Nolan;Eoghan Clifford
  • 通讯作者:
    Eoghan Clifford
Results with an Anticoagulation Protocol in 99 SynCardia Total Artificial Heart Recipients
99 名 SynCardia 全人工心脏接受者的抗凝方案结果
  • DOI:
  • 发表时间:
    2013
  • 期刊:
  • 影响因子:
    0
  • 作者:
    J. Copeland;H. Copeland;Paul Nolan;M. Gustafson;M. Slepian;Richard G. Smith
  • 通讯作者:
    Richard G. Smith

Paul Nolan的其他文献

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{{ truncateString('Paul Nolan', 18)}}的其他基金

Towards precision experiments with antihydrogen
迈向反氢精密实验
  • 批准号:
    EP/P024785/1
  • 财政年份:
    2017
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
Time of flight X-ray imaging for security applications
用于安全应用的飞行时间 X 射线成像
  • 批准号:
    ST/M000370/1
  • 财政年份:
    2014
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
Physics with Trapped Antihydrogen
俘获反氢物理学
  • 批准号:
    EP/L014769/1
  • 财政年份:
    2014
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
Improvement of the sensitivity of germanium detectors for safety and security applications
提高用于安全和安保应用的锗探测器的灵敏度
  • 批准号:
    ST/K000330/1
  • 财政年份:
    2012
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
The AGATA spectrometer
AGATA 光谱仪
  • 批准号:
    ST/I504959/1
  • 财政年份:
    2010
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
The Spectroscopy of Antihydrogen
反氢的光谱学
  • 批准号:
    EP/H02431X/1
  • 财政年份:
    2010
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
The AGATA spectrometer
AGATA 光谱仪
  • 批准号:
    ST/F004192/1
  • 财政年份:
    2009
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
DISTINGUISH: Detection of explosive substances by tomographic inspection using neutron and gamma-ray spectroscopy
区别:使用中子和伽马射线光谱仪通过断层扫描检测爆炸性物质
  • 批准号:
    EP/C007964/1
  • 财政年份:
    2006
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Research Grant
SGER: Reproductive Biology of Female King Penguins
SGER:雌性王企鹅的生殖生物学
  • 批准号:
    0128913
  • 财政年份:
    2001
  • 资助金额:
    $ 135.54万
  • 项目类别:
    Standard Grant

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Laser-cooled Berylllium ions for enhanced antihydrogen trapping and magnetometry
激光冷却铍离子用于增强反氢捕获和磁力测定
  • 批准号:
    2889026
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    2023
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Toward spectroscopic measurements of hydrogen/antihydrogen in an atomic fountain
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  • 批准号:
    574811-2022
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    2022
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Direct measurement of the Lamb shift in antihydrogen
直接测量反氢的兰姆位移
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    574808-2022
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    2022
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Fundamental Symmetry Tests with Trapped Antihydrogen: ALPHA at CERN/AD
捕获反氢的基本对称性测试:CERN/AD 的 ALPHA
  • 批准号:
    SAPPJ-2020-00022
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    2022
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    $ 135.54万
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Precision Experiments with Antihydrogen
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    EP/V00137X/1
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用反氢加速器进行反物质引力的基础测试
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    2587239
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    2021
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Fundamental Symmetry Tests with Trapped Antihydrogen: ALPHA at CERN/AD
捕获反氢的基本对称性测试:CERN/AD 的 ALPHA
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    SAPPJ-2020-00022
  • 财政年份:
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Determination of the charge radius of antiproton and test of CPT symmetry through the Lamb shift measurement of antihydrogen
通过反氢的兰姆位移测量确定反质子的电荷半径并测试CPT对称性
  • 批准号:
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    Studentship
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