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量子波函数的直接测量。

Direct measurement of the quantum wavefunction.

机构信息

Institute for National Measurement Standards, National Research Council, 1200 Montreal Road, Ottawa, Canada.

出版信息

Nature. 2011 Jun 8;474(7350):188-91. doi: 10.1038/nature10120.

DOI:10.1038/nature10120
PMID:21654800
Abstract

The wavefunction is the complex distribution used to completely describe a quantum system, and is central to quantum theory. But despite its fundamental role, it is typically introduced as an abstract element of the theory with no explicit definition. Rather, physicists come to a working understanding of the wavefunction through its use to calculate measurement outcome probabilities by way of the Born rule. At present, the wavefunction is determined through tomographic methods, which estimate the wavefunction most consistent with a diverse collection of measurements. The indirectness of these methods compounds the problem of defining the wavefunction. Here we show that the wavefunction can be measured directly by the sequential measurement of two complementary variables of the system. The crux of our method is that the first measurement is performed in a gentle way through weak measurement, so as not to invalidate the second. The result is that the real and imaginary components of the wavefunction appear directly on our measurement apparatus. We give an experimental example by directly measuring the transverse spatial wavefunction of a single photon, a task not previously realized by any method. We show that the concept is universal, being applicable to other degrees of freedom of the photon, such as polarization or frequency, and to other quantum systems--for example, electron spins, SQUIDs (superconducting quantum interference devices) and trapped ions. Consequently, this method gives the wavefunction a straightforward and general definition in terms of a specific set of experimental operations. We expect it to expand the range of quantum systems that can be characterized and to initiate new avenues in fundamental quantum theory.

摘要

波函数是用于完全描述量子系统的复杂分布,是量子理论的核心。但尽管它具有基础性作用,通常也只是作为理论的抽象元素来引入,没有明确的定义。相反,物理学家通过使用 Born 规则来计算测量结果的概率,从而逐渐理解波函数的作用。目前,波函数是通过层析成像方法来确定的,这种方法估计与各种测量结果最一致的波函数。这些方法的间接性加剧了波函数定义的问题。在这里,我们通过系统的两个互补变量的顺序测量来直接测量波函数。我们方法的关键在于,第一次测量是通过弱测量以温和的方式进行的,以免使第二次测量无效。结果是,波函数的实部和虚部直接出现在我们的测量仪器上。我们通过直接测量单个光子的横向空间波函数给出了一个实验示例,这是以前任何方法都没有实现过的任务。我们表明,该概念是通用的,适用于光子的其他自由度,如偏振或频率,以及其他量子系统,例如电子自旋、超导量子干涉装置(SQUID)和囚禁离子。因此,这种方法以特定的一组实验操作来直接和全面地定义波函数。我们预计它将扩展可被描述的量子系统的范围,并为基础量子理论开辟新途径。

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2
Synthesizing arbitrary quantum states in a superconducting resonator.在超导谐振器中合成任意量子态。
Nature. 2009 May 28;459(7246):546-9. doi: 10.1038/nature08005.
3
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Entropy (Basel). 2024 Aug 26;26(9):725. doi: 10.3390/e26090725.
4
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Entropy (Basel). 2023 Jul 17;25(7):1075. doi: 10.3390/e25071075.
5
Quantum wave function reconstruction by free-electron spectral shearing interferometry.基于自由电子光谱切变干涉术的量子波函数重构
Sci Adv. 2023 Jul 7;9(27):eadg8516. doi: 10.1126/sciadv.adg8516.
6
Experimental demonstration of separating the wave‒particle duality of a single photon with the quantum Cheshire cat.利用量子柴郡猫分离单光子波粒二象性的实验演示
Light Sci Appl. 2023 Jan 5;12(1):18. doi: 10.1038/s41377-022-01063-5.
7
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Polymers (Basel). 2022 Jun 16;14(12):2449. doi: 10.3390/polym14122449.
8
Anomalous weak values via a single photon detection.通过单光子探测实现的反常弱值
Light Sci Appl. 2021 May 25;10(1):106. doi: 10.1038/s41377-021-00539-0.
9
How to put quantum particles on magic bullet trajectories that can hit two targets without a clear line-of-sight.如何让量子粒子沿着神奇的子弹轨迹运动,使其能够在没有清晰视线的情况下击中两个目标。
Sci Rep. 2021 Apr 12;11(1):7964. doi: 10.1038/s41598-021-87025-0.
10
Quantum advantage in postselected metrology.后选择计量中的量子优势。
Nat Commun. 2020 Jul 29;11(1):3775. doi: 10.1038/s41467-020-17559-w.
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4
Observation of the spin hall effect of light via weak measurements.通过弱测量观察光的自旋霍尔效应。
Science. 2008 Feb 8;319(5864):787-90. doi: 10.1126/science.1152697. Epub 2008 Jan 10.
5
Measurement of the transverse spatial quantum state of light at the single-photon level.单光子水平下光的横向空间量子态的测量。
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6
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Phys Rev Lett. 2005 Jun 10;94(22):220405. doi: 10.1103/PhysRevLett.94.220405. Epub 2005 Jun 9.
7
Tomographic imaging of molecular orbitals.分子轨道的断层成像。
Nature. 2004 Dec 16;432(7019):867-71. doi: 10.1038/nature03183.
8
Continuous weak measurement and nonlinear dynamics in a cold spin ensemble.冷原子自旋系综中的连续弱测量与非线性动力学
Phys Rev Lett. 2004 Oct 15;93(16):163602. doi: 10.1103/PhysRevLett.93.163602. Epub 2004 Oct 14.
9
Direct measurement of the spatial Wigner function with area-integrated detection.采用面积积分检测直接测量空间维格纳函数。
Opt Lett. 2003 Aug 1;28(15):1317-9. doi: 10.1364/ol.28.001317.
10
Long-distance quantum communication with atomic ensembles and linear optics.利用原子系综和线性光学实现的长距离量子通信。
Nature. 2001 Nov 22;414(6862):413-8. doi: 10.1038/35106500.