Zhang Chaojie, Wu Yipeng, Sinclair Mitchell, Farrell Audrey, Marsh Kenneth A, Petrushina Irina, Vafaei-Najafabadi Navid, Gaikwad Apurva, Kupfer Rotem, Kusche Karl, Fedurin Mikhail, Pogorelsky Igor, Polyanskiy Mikhail, Huang Chen-Kang, Hua Jianfei, Lu Wei, Mori Warren B, Joshi Chan
Department of Electrical and Computer Engineering, University of California, Los Angeles, CA 90095.
Department of Physics and Astronomy, Stony Brook University, New York, NY 11794.
Proc Natl Acad Sci U S A. 2022 Dec 13;119(50):e2211713119. doi: 10.1073/pnas.2211713119. Epub 2022 Dec 5.
The origin of the seed magnetic field that is amplified by the galactic dynamo is an open question in plasma astrophysics. Aside from primordial sources and the Biermann battery mechanism, plasma instabilities have also been proposed as a possible source of seed magnetic fields. Among them, thermal Weibel instability driven by temperature anisotropy has attracted broad interests due to its ubiquity in both laboratory and astrophysical plasmas. However, this instability has been challenging to measure in a stationary terrestrial plasma because of the difficulty in preparing such a velocity distribution. Here, we use picosecond laser ionization of hydrogen gas to initialize such an electron distribution function. We record the 2D evolution of the magnetic field associated with the Weibel instability by imaging the deflections of a relativistic electron beam with a picosecond temporal duration and show that the measured [Formula: see text]-resolved growth rates of the instability validate kinetic theory. Concurrently, self-organization of microscopic plasma currents is observed to amplify the current modulation magnitude that converts up to ~1% of the plasma thermal energy into magnetic energy, thus supporting the notion that the magnetic field induced by the Weibel instability may be able to provide a seed for the galactic dynamo.
由银河系发电机放大的种子磁场的起源是等离子体天体物理学中的一个悬而未决的问题。除了原初源和比尔曼电池机制外,等离子体不稳定性也被认为是种子磁场的一个可能来源。其中,由温度各向异性驱动的热韦贝尔不稳定性因其在实验室和天体物理等离子体中普遍存在而引起了广泛关注。然而,由于难以制备这样的速度分布,在静止的地球等离子体中测量这种不稳定性一直具有挑战性。在这里,我们利用氢气的皮秒激光电离来初始化这样的电子分布函数。我们通过对具有皮秒时间持续时间的相对论电子束的偏转进行成像,记录与韦贝尔不稳定性相关的磁场的二维演化,并表明所测量的不稳定性的[公式:见正文]分辨增长率验证了动力学理论。同时,观察到微观等离子体电流的自组织放大了电流调制幅度,该幅度将高达约1%的等离子体热能转化为磁能,从而支持了韦贝尔不稳定性诱导的磁场可能能够为银河系发电机提供种子的观点。