Discovery of neutrino and oscillation phenomenon

Jinghao Sun, Jiayu Yu, Xinyi Li, Xi Liu
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Abstract

As an intersection of particle physics, nuclear physics and geophysics, neutrinos are currently a hot research direction in the physics field, and it plays an important role in the study of the origin and evolution of the universe and the formation and evolution of celestial bodies. The Standard Model of particle physics has achieved great success in describing experimental phenomena in particle physics and correctly classifying known particles. In 2015, Takaaki Kajita and Arthur B. McDonald won the Nobel Prize in Physics for their discovery of neutrino oscillations, which brought neutrino research to a climax. In recent years, major breakthroughs have been made in the study of neutrinos, with the discovery that neutrinos have mass and that different neutrinos can be transformed into each other in a way known as neutrino oscillations, or neutrino mixing. Neutrino oscillations are the only physical phenomenon so far that cannot be explained by the Standard Model. Because neutrinos play an important role in both the most microscopic particle physics and the most macroscopic formation and evolution of the universe, the study of neutrinos is increasingly becoming a popular research direction. In this paper, the neutrino oscillation experiment is comprehensively studied and interpreted from the perspective of historical development. Designed to verify the existence of neutrino oscillations and thus prove that neutrinos have mass.
发现中微子和振荡现象
中微子作为粒子物理、核物理和地球物理的交叉学科,是当前物理学领域的热门研究方向,在研究宇宙的起源与演化、天体的形成与演化等方面发挥着重要作用。粒子物理标准模型在描述粒子物理实验现象和正确分类已知粒子方面取得了巨大成功。2015年,梶田隆明和阿瑟-B-麦克唐纳因发现中微子振荡而获得诺贝尔物理学奖,将中微子研究推向高潮。近年来,中微子研究取得了重大突破,发现中微子具有质量,不同的中微子可以相互转化,这种方式被称为中微子振荡,或中微子混合。中微子振荡是迄今为止唯一无法用标准模型解释的物理现象。由于中微子在最微观的粒子物理和最宏观的宇宙形成与演化中都扮演着重要角色,因此对中微子的研究日益成为热门研究方向。本文从历史发展的角度对中微子振荡实验进行了全面的研究和解读。旨在验证中微子振荡的存在,从而证明中微子具有质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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