Matter and Radiation at Extremes, Volume. 7, Issue 2, 024402(2022)
Observation of Zeeman splitting effect in a laser-driven coil
[1] P.Zeeman. XXXII. On the influence of magnetism on the nature of the light emitted by a sub-stance. London, Edinburgh Dublin Philos. Mag. J. Sci., 43, 226-239(1897).
[2] W. L.Virgo. Simultaneous Stark and Zeeman effects in atoms with hyperfine structure. Am. J. Phys., 81, 936-942(2013).
[3] L.Eaves, C.Uihlein. High-magnetic-field Zeeman spectroscopy of the 0.84-eV Cr-related emission and absorption line in GaAs(Cr): Experiment and theory. Phys. Rev. B, 26, 4473-4484(1982).
[4] K.Fujii, M.Goto, M.Hasuo, A.Iwamae, K.Mizushiri, S.Morita, T.Shikama. A simultaneous measurement of polarization-resolved spectra of neutral helium 23P–33D, 21P–31D and 23P–33S emissions from the periphery of a Large Helical Device plasma. Plasma Phys. Controlled Fusion, 53, 105012-105024(2011).
[5] S.Brezinsek, C. C.Chu, J. D.Hey, P.Mertens, B.Unterberg. Oxygen ion impurity in the TEXTOR tokamak boundary plasma observed and analysed by Zeeman spectroscopy. J. Phys. B: At., Mol. Opt. Phys., 35, 1525-1553(2002).
[6] R. J.Boyle, D.Deming, D. E.Jennings, G.Wiedemann. Solar magnetic field studies using the 12 micron emission lines. I. Quiet-sun time series and sunspot slices: Erratum. Astrophys. J., 338, 1193(1989).
[7] H. W.Babcock. Zeeman effect in stellar spectra. Astrophys. J., 105, 105(1947).
[8] R. I.Anderson, A.Reiners, S. K.Solanki. On detectability of Zeeman broadening in optical spectra of F- and G-dwarfs. Astron. Astrophys., 522, A81(2010).
[9] J. D.Bailey. Measuring the surface magnetic fields of magnetic stars with unresolved Zeeman splitting. Astron. Astrophys., 568, A38(2014).
[10] J.Ferreira. Magnetically-driven jets from Keplerian accretion discs. Astron. Astrophys., 319, 340-359(1997).
[11] R. A.Kopp, G. W.Pneuman. Magnetic reconnection in the corona and the loop prominence phenomenon. Sol. Phys., 50, 85-98(1976).
[12] H.Hara, T.Kosugi, S.Masuda, Y.Ogawara, S.Tsuneta. A loop-top hard X-ray source in a compact solar flare as evidence for magnetic reconnection. Nature, 371, 495-497(1994).
[13] D. W.Droemer, H. R.Griem, C. K.Manka, E. A.McLean, B. H.Ripin, J. A.Stamper. Observation of magnetic fields in laser-produced plasma using the Zeeman effect. Phys. Fluids, 27, 1327-1335(1984).
[14] M.Armengaud, C.Arnas, L.Berge, J.Briand, J. P.Dinguirard, M.El Tamer, A.Gomes, J. C.Kieffer, Y.Quemener. Measurements of magnetic fields using the Zeeman effect in laser-produced plasmas. Phys. Fluids, 30, 2893-2897(1987).
[15] Y.Abe, Y.Arikawa, H.Azechi, M.Bailly-Grandvaux, S.Fujioka, M.Hata, Y.Iwasa, N.Iwata, T.Johzaki, J.Kawanaka, H.Kishimoto, R.Kodama, S.Kojima, K. F. F.Law, S.Lee, K.Matsuo, K.Mima, N.Miyanaga, A.Morace, H.Morita, H.Nagatomo, M.Nakai, Y.Nakata, H.Nishimura, T.Norimatsu, T.Ozaki, H.Sakagami, S.Sakata, J. J.Santos, H.Sawada, Y.Sentoku, H.Shiraga, T.Shiroto, A.Sunahara, A.Syuhada, S.Tokita, K.Yamanoi, A.Yao, A.Yogo. Magnetized fast isochoric laser heating for efficient creation of ultra-high-energy-density states. Nat. Commun., 9, 3937(2018).
[17] H.Daido, H.Fujita, M.Fujita, Y.Kitagawa, F.Miki, K.Mima, S.Nakai, K.Sawai, C.Yamanaka. Generation of a strong magnetic field by an intense CO2 laser pulse. Phys. Rev. Lett., 56, 846-849(1986).
[18] H.Azechi, S.Fujioka, Y.Hironaka, K.Ishihara, T.Johzaki, H.Nakashima, H.Nishimura, K.Shigemori, H.Shiraga, A.Sunahara, T.Watanabe, N.Yamamoto, Z.Zhang. Kilotesla magnetic field due to a capacitor-coil target driven by high power laser. Sci. Rep., 3, 1170(2013).
[19] Y. Q.Gu, B.Han, S. K.He, W.Hong, F.Li, Y. F.Li, Y. T.Li, G. Q.Liao, C.Liu, F.Lu, X. X.Pei, W. M.Wang, W. W.Wang, H. G.Wei, N.Xie, F. B.Xue, L.Yang, D. W.Yuan, B. H.Zhang, F. Q.Zhang, J.Zhang, K.Zhang, Z.Zhang, G.Zhao, J. R.Zhao, Z. Q.Zhao, J. Y.Zhong, K. N.Zhou, B. J.Zhu, J. Q.Zhu. Strong magnetic fields generated with a simple open-ended coil irradiated by high power laser pulses. Appl. Phys. Lett., 107, 261903(2015).
[21] Y.Arikawa, H.Azechi, M.Bailly-Grandvaux, C.Bellei, S.Fujioka, S.Kojima, K.Kondo, K. F.Law, S.Lee, K.Matsuo, A.Morace, S.Sakata, J. J.Santos, X.Vaisseau, A.Yogo, Z.Zhang. Direct measurement of kilo-tesla level magnetic field generated with laser-driven capacitor-coil target by proton deflectometry. Appl. Phys. Lett., 108, 091104(2016).
[22] N.Alfonso, M.Evans, G.Fiksel, W.Fox, L.Gao, H.Ji. Ultrafast proton radiography of the magnetic fields generated by a laser-driven coil current. Phys. Plasmas, 23, 043106(2016).
[23] Z.Fang, B.Han, N.Hua, W.Jiang, Y.Li, G.Liang, C.Wang, F.Wang, H.Wei, D.Yuan, J.Zhang, Z.Zhang, G.Zhao, J.Zhong, B.Zhu, B.Zhu, J.Zhu. Generation of strong magnetic fields with a laser-driven coil. High Power Laser Sci. Eng., 6, e38(2018).
[24] Y.He, W.Jiang, Y.Li, Y.Li, J.Ma, J.Tan, J.Wang, Y.Zhang, Z.Zhang, B.Zhu, C.Zhu. Ultrafast pulsed magnetic fields generated by a femtosecond laser. Appl. Phys. Lett., 113, 072405(2018).
[25] Y.He, W.Jiang, Y.Li, Y.Li, J.Ma, J.Tan, J.Wang, Y.Zhang, Z.Zhang, B.Zhu, C.Zhu. Effects of pulse duration on magnetic fields generated with a laser-driven coil. High Energy Density Phys., 37, 100900(2020).
[26] Y.Gu, S.He, W.Hong, F.Li, M.Li, Y.Li, Y.Li, G.Liao, F.Lu, W.Wang, X.Wang, N.Xie, L.Yang, B.Zhang, F.Zhang, J.Zhang, Z.Zhang, Z.Zhao, K.Zhou, B.Zhu. Proton radiography of magnetic fields generated with an open-ended coil driven by high power laser pulses. Matter Radiat. Extremes, 1, 187-191(2016).
[27] J.Chavanne, O.Chubar, P.Elleaume. A three-dimensional magnetostatics computer code for insertion devices. J. Synchrotron Radiat., 5, 481-484(1998).
[28] E. U.Condon, G. H.Shortley. The Theory of Atomic Spectra(1935).
[30] E.Back, F.Paschen. Normale und anomale Zeemaneffekte. Ann. Phys., 344, 897-932(1912).
[31] F. F.Chen. Introduction to Plasma Physics and Controlled Fusion(2016).
[32] R. B.Campbell, I. E.Golovkin, J. J.MacFarlane, T. A.Mehlhorn, B. V.Oliver, D. R.Welch, P. R.Woodruff. Simulation of the ionization dynamics of aluminum irradiated by intense short-pulse lasers. Inertial Fusion Sciences and Applications 2003, 457-460(2004).
[33] N. V.Abrosimov, E. T.Bowyer, S. K.Clowes, H.Engelkamp, I.Galbraith, H. W.Hübers, J.Li, K. L.Litvinenko, B. N.Murdin, P. G.Murdin, M. L.Pang, S. G.Pavlov, C. R.Pidgeon, H.Riemann. Si:P as a laboratory analogue for hydrogen on high magnetic field white dwarf stars. Nat. Commun., 4, 1469(2013).
[34] S. F.Anderson, J.Brinkmann, M. J.Collinge, C. C.Dahn, D.Eisenstein, X.Fan, P. B.Hall, H. C.Harris, S.Hawley, S. J.Kleinman, G. R.Knapp, J.Krzesiski, D. Q.Lamb, J.Liebert, B.Margon, A.Nitta, G. D.Schmidt, D. P.Schneider, N.Silvestri, J. A.Smith, P.Szkody. SDSS white dwarfs with spectra showing atomic oxygen and/or carbon lines. Astrophys. J., 126, 2521(2003).
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Baojun Zhu, Zhe Zhang, Chang Liu, Dawei Yuan, Weiman Jiang, Huigang Wei, Fang Li, Yihang Zhang, Bo Han, Lei Cheng, Shangqing Li, Jiayong Zhong, Xiaoxia Yuan, Bowei Tong, Wei Sun, Zhiheng Fang, Chen Wang, Zhiyong Xie, Neng Hua, Rong Wu, Zhanfeng Qiao, Guiyun Liang, Baoqiang Zhu, Jianqiang Zhu, Shinsuke Fujioka, Yutong Li. Observation of Zeeman splitting effect in a laser-driven coil[J]. Matter and Radiation at Extremes, 2022, 7(2): 024402
Category: Fundamental Physics At Extreme Light
Received: Jun. 23, 2021
Accepted: Jan. 16, 2022
Published Online: Apr. 6, 2022
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