大学物理 ›› 2026, Vol. 45 ›› Issue (4): 1-.doi: 10.16854/j.cnki.1000-0712.250720

• 专家视点 •    下一篇

2025年诺贝尔物理学奖解读:量子叠加从微观走向宏观的百年旅程

于一涵,李昕怡,许凯,范桁   

  1. 1. 中国科学院物理研究所 北京凝聚态物理国家研究中心,北京 100190;2. 中国科学院大学 物理科学学院,北京 100049;
    3. 北京量子信息科学研究院 北京容错量子计算重点实验室,北京 100193;4. 合肥国家实验室,安徽 合肥 230088;
    5. 松山湖材料实验室,广东 东莞 523808
  • 收稿日期:2025-12-15 修回日期:2026-01-19 出版日期:2026-07-06 发布日期:2026-07-09
  • 基金资助:
    国家自然科学基金(92265207、T2121001、U25A6009、T2322030、12122504、12274142、12475017)、科技创新2030量子通信与量子计算机重大项目(2021ZD0301800)、北京新星计划(20220484121), 科技部项目(2025YFE0217600)资助
    作者简介:于一涵(2001—), 男, 河北沧州人, 博士生, 主要从事基于超导量子电路的多体物理与量子调控的研究,E-mail: yihan.yu@iphy.ac.cn

2025 Nobel Prize in Physics explained: A century-long journey of  quantum superposition from the microscopic to the macroscopic

YU Yihan, LI Xinyi, XU Kai1, FAN Heng   

  1. 1. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China; 
    2. School of Physical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China; 
    3. Beijing Key Laboratory of Fault-Tolerant Quantum Computing, Beijing Academy of Quantum Information Sciences, Beijing 100193, China; 
    4. Hefei National Laboratory, Hefei, Anhui 230088, China; 
    5. Songshan Lake Materials Laboratory, Dongguan, Guangdong 523808, China
  • Received:2025-12-15 Revised:2026-01-19 Online:2026-07-06 Published:2026-07-09

摘要: 2025年诺贝尔物理学奖授予了约翰·克拉克(John Clarke)、米歇尔·H·德沃雷(Michel H.Devoret)和约翰·M·马丁尼斯(John MMartinis),以表彰他们在超导电路中实现并操控宏观量子相干态的决定性贡献.他们的工作证明,量子力学的核心特征——相干叠加,并非微观粒子的专属,也可以在由数十亿电子组成的、工程化的人造宏观系统中存在并被精确控制.本文将从量子叠加的基本概念出发,阐述退相干如何模糊了量子与经典的界限,并介绍获奖者如何利用超导电路这一平台,实现了宏观能级量子化、相干振荡与量子隧穿,最终为现代量子计算与量子工程奠定了物理基础.

关键词: 量子叠加态, 超导量子比特, 宏观量子相干, 量子计算

Abstract: The 2025 Nobel Prize in Physics was awarded to John Clarke, Michel H. Devoret, and John M. Martinis in recognition of their decisive contributions to realizing and controlling macroscopic quantum coherent states in superconducting circuits. Their work demonstrates that coherent superposition—a core feature of quantum mechanics—is not exclusive to microscopic particles but can also exist and be precisely manipulated in engineered artificial systems composed of billions of electrons. This article begins with the fundamental concept of quantum superposition, explains how decoherence blurs the line between the quantum and classical worlds, and describes how the laureates used superconducting circuits to achieve macroscopic energy-level quantization, coherent oscillations, and quantum tunneling—ultimately laying the physical foundations for modern quantum computing and quantum engineering.



Key words:  quantum superposition, superconducting qubits, macroscopic quantum coherence, quantum computing