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New Physics Undercover at the LHC.

机译:大型强子对撞机的新物理秘密。

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摘要

With the completion of 7 TeV and 8 TeV data taking at the Large Hadron Collider (LHC), the physics community witnessed one of the great triumphs of modern physics: the completion of the Standard Model (SM) as an effective theory. The final missing particle, the Higgs boson, was observed and its mass was measured. However, many theoretical questions remain unanswered. What is the source of electroweak symmetry breaking? What is the nature of dark matter? How does gravity fit into the picture? With no definitive hints of new physics at the LHC, we must consider the possibility that our search strategies need to be expanded. Conventional LHC searches focus on theoretically motivated scenarios, such as the Minimal Supersymmetric Standard Models and Little Higgs Theories. However, it is possible that new physics may be entirely different from what we might expect. In this thesis, we examine a variety of scenarios that lead to new physics undercover at the LHC. First we look at potential new physics hiding in Quantum Chromo-Dynamics backgrounds, which may be uncovered using jet substructure techniques in a data-driven way. Then we turn to new long-lived particles hiding in Higgs decay, which may lead to displaced vertices. Such a signal can be unearthed through a data-driven analysis. Then we turn to new physics with ``semi-visible jets'', which lead to missing momentum aligned with jet momentum. These events are vetoed in traditional searches and we demonstrate ways to uncover these signals. Lastly, we explore performance of future colliders in two case studies: Stops and Higgs Portal searches. We show that a 100 TeV collider will lead to significant improvements over 14 TeV LHC runs. Indeed, new physics may lie undercover at the LHC and future colliders, waiting to be discovered.
机译:在大型强子对撞机(LHC)上完成了7 TeV和8 TeV数据的采集后,物理学界见证了现代物理学的一大成就:标准模型(SM)的完成是一种有效的理论。观察到最终丢失的粒子,希格斯玻色子,并测量其质量。但是,许多理论问题仍然没有答案。电弱对称破坏的根源是什么?暗物质的本质是什么?重力如何适合图片?在大型强子对撞机没有明确的新物理学提示的情况下,我们必须考虑可能需要扩展我们的搜索策略。常规的大型强子对撞机搜索集中在具有理论动机的情况下,例如最小超对称标准模型和小希格斯理论。但是,新物理学有可能与我们期望的完全不同。在本文中,我们研究了导致LHC发生新的物理秘密的各种情况。首先,我们看一下隐藏在Quantum Chromo-Dynamics背景中的新物理现象,这些现象可能是通过使用射流子结构技术以数据驱动的方式发现的。然后我们转向隐藏在希格斯衰变中的新的长寿命粒子,这可能导致顶点移位。可以通过数据驱动的分析来发掘此类信号。然后我们转向具有``半可见射流''的新物理学,这会导致失去与射流动量一致的动量。这些事件在传统搜索中被否决,我们演示了发现这些信号的方法。最后,我们通过两个案例研究了未来对撞机的性能:Stops和Higgs Portal搜索。我们证明了100 TeV对撞机将大大改善14 TeV LHC的运行。实际上,大型强子对撞机和未来的对撞机可能隐藏着新的物理学,等待发现。

著录项

  • 作者

    Lou, Hou Keong.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 High energy physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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