论文标题

雪人白皮书:时空对称性和引力物理学的精确研究

Snowmass White Paper: Precision Studies of Spacetime Symmetries and Gravitational Physics

论文作者

Adelberger, Eric, Budker, Dmitry, Folman, Ron, Geraci, Andrew A., Harke, Jason T., Kaplan, Daniel M., Kimball, Derek F. Jackson, Lehnert, Ralf, Moore, David, Morley, Gavin W., Palladino, Anthony, Phillips, Thomas J., Piacentino, Giovanni M., Snow, William Michael, Sudhir, Vivishek

论文摘要

高能物理学主要关注揭示在基本层面上控制性质的法律和原则。该领域的研究通常依赖于探测既定物理学的边界,这是一项通常与极端能量和距离尺度有关的事务。因此,毫无疑问,传统上,粒子物理学通常由大规模实验方法主导,通常涉及高能量,例如围圈和储存环,宇宙学和天体物理学观察,大量检测器系统等。但是,在较小的较小实验中,在较小的能量方面经常进行高度敏感性测量值,最重要的是,在较低的范围内进行了两种粒子的体验,这是一种物质上的质量,很重要。首先,他们利用了与实验技术和技术的最新进步相邻物理领域的协同作用。随着现象学的加强探索,这些进步导致了这样的认识,即可以通过这种方法来克服与弱耦合或新物理学的预期抑制因素相关的挑战,同时保持大量的实验控制。其次,相对于上述更常规的方法,这些测量中的许多测量范围扩大了粒子物理现象和可观察到的范围。因此,将这种测量与上述常规努力结合起来,既呈更宽又更紧密的网络,从而源自标准模型(BSM)以外的物理学的可能影响。本文认为,这种评估表明,这种方法和测量对高能物理的影响不断增长,因此保证直接支持作为粒子物理学研究。利用与此类研究相关的近期快速进步和对高能物理学的明亮前景,可能会产生高回报,但需要资助机构的大量和持续的努力。

High-energy physics is primarily concerned with uncovering the laws and principles that govern nature at the fundamental level. Research in this field usually relies on probing the boundaries of established physics, an undertaking typically associated with extreme energy and distance scales. It is therefore unsurprising that particle physics has traditionally been dominated by large-scale experimental methods often involving high energies, such as colliders and storage rings, cosmological and astrophysical observations, large-volume detector systems, etc. However, high-sensitivity measurements in smaller experiments, often performed at lower energies, are presently experiencing a surge in importance for particle physics for at least two reasons. First, they exploit synergies to adjacent areas of physics with recent advances in experimental techniques and technology. Together with intensified phenomenological explorations, these advances have led to the realization that challenges associated with weak couplings or the expected suppression factors for new physics can be overcome with such methods while maintaining a large degree of experimental control. Second, many of these measurements broaden the range of particle-physics phenomena and observables relative to the above set of more conventional methodologies. Combining such measurements with the conventional efforts above therefore casts both a wider and tighter net for possible effects originating from physics beyond the Standard Model (BSM). This paper argues that this assessment points at a growing impact of such methods and measurements on high-energy physics, and therefore warrants direct support as particle-physics research. Leveraging the recent rapid progress and bright outlook associated with such studies for high-energy physics, could yield high returns, but requires substantial and sustained efforts by funding agencies.

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