论文标题
用类似物狩猎量子重力:高能量粒子物理的情况
Hunting Quantum Gravity with Analogs: the case of High Energy Particle Physics
论文作者
论文摘要
在这篇综述中,我们首次在一篇论文中收集了使用强子生产,在高能散射过程中的研究线的新旧结果以及未来的观点,以实验探测量子重力的基本问题。点燃了两个领域之间联系的主要观察结果是所谓的量子染色性动力学的``颜色事件地平线'',以及此类散射过程中涉及的巨大加速度:两者都表明现象指向UNRUH(和相关的鹰派)类型的效果。在对此进行了首次开创性的研究之后,此类研究不断进行,包括对地平线熵和其他``黑洞热力学''行为的研究,偶然地是模拟重力研究本身的前沿。在这里的各个地方都强调,两种现象学之间的\ textit {trait d'ounion}是,在两种情况下,``热''行为''''''热'行为更容易被理解为不是由于少量的粒子,而是高度的温度,而不是实际的热化过程(有时是不可能的,有时是不可能的)。最后,最近研究了其他方面,例如Hadronic物质和黑洞的自我批判组织。这些调查的结果也得到了总结和评论。一般而言,该研究线表明,实际上我们可以使用不限于仅属于凝结物质领域的模拟系统探测量子重力理论构造。这是必须的。
In this review we collect, for the first time in one paper, old and new results and future perspectives of the research line that uses hadron production, in high-energy scattering processes, to experimentally probe fundamental questions of quantum gravity. The key observations, that ignited the link between the two arenas, are the so-called ``color-event horizon'' of quantum chromodynamics, and the enormous (de)accelerations involved in such scattering processes: both phenomena point to the Unruh (and related Hawking) type of effects. After the first pioneering investigations of this, such research went on and on, including studies of the horizon entropy and other ``black-hole thermodynamical'' behaviors, which incidentally are also the frontier of the analog gravity research itself. It is stressed in various places here that the \textit{trait d'union} between the two phenomenologies is that in both scenarios, hadron physics and black hole physics, ``thermal'' behaviors are more easily understood not as due to real thermalization processes (sometimes just impossible, given the small number of particles involved), but rather to a stochastic/quantum entanglement nature of such temperature. Finally, other aspects, such as the self-critical organizations of hadronic matter and of black-holes, have been recently investigated. The results of those investigations are also summarized and commented upon here. As a general remark, this research line shows that indeed we can probe quantum gravity theoretical constructions with analog systems that are not confined to belong only to the condensed matter arena. This is as it must be.