Please wait a minute...
Chin. Phys. B, 2024, Vol. 33(10): 106101    DOI: 10.1088/1674-1056/ad625a
CONDENSED MATTER: STRUCTURAL, MECHANICAL, AND THERMAL PROPERTIES Prev   Next  

Direct observation of shock-induced phase transformation in polycrystalline iron via in situ x-ray diffraction

Fan Zhang(张帆)1,2,†, Jia-Qin Dong(董佳钦)2, Zhi-Yong Xie(谢志勇)2, Zhi-Yu He(贺芝宇)2, Hua Shu(舒桦)2, Rui-Rong Wang(王瑞荣)2, Jun Xiong(熊俊)2, Guo Jia(贾果)2, Zhi-Heng Fang(方智恒)2, Wei Wang(王伟)2, Da-Wu Xiao(肖大武)3, An-Le Lei(雷安乐)2, Jie Chen(陈洁)1, and Xiu-Guang Huang(黄秀光)2,‡
1 Collaborative Innovation Center of IFSA (CICIFSA), School of Physics and Astronomy, Center for Ultrafast Science and Technology, Key Laboratory for Laser Plasmas (Ministry of Education), Shanghai Jiao Tong University, Shanghai 200240, China;
2 Shanghai Institute of Laser Plasma, China Academy of Engineering Physics, Shanghai 201800, China;
3 Institute of Materials, China Academy of Engineering Physics, Mianyang 621700, China
Abstract  Phase transition of polycrystalline iron compressed along the Hugoniot is studied by combining laser-driven shock with in situ x-ray diffraction technique. It is suggested that polycrystalline iron changes from an initial body-centered cubic structure to a hexagonal close-packed structure with increasing pressure (i.e., a phase transition from $\alpha$ to $\varepsilon$). The relationship between density and pressure for polycrystalline iron obtained from the present experiments is found to be in good agreement with the gas-gun Hugoniot data. Our results show that experiments with samples at lower temperatures under static loading, such as in a diamond anvil cell, lead to higher densities measured than those found under dynamic loading. This means that extrapolating results of static experiments may not predict the dynamic responses of materials accurately. In addition, neither the face-centered cubic structure seen in previous molecular-dynamics simulations or two-phase coexistence are found within our experimental pressure range.
Keywords:  in situ x-ray diffraction      phase transition      polycrystalline iron  
Received:  21 March 2024      Revised:  04 June 2024      Accepted manuscript online:  12 July 2024
PACS:  61.05.cp (X-ray diffraction)  
  64.70.K (Solid-solid transitions)  
  62.50.-p (High-pressure effects in solids and liquids)  
Fund: This work was supported by the National Natural Science Foundation of China (Grant Nos. 12304033, 12072328, and 11991073).
Corresponding Authors:  Fan Zhang, Xiu-Guang Huang     E-mail:  zhang_fan@sjtu.edu.cn;huangxiuguang@sohu.com

Cite this article: 

Fan Zhang(张帆), Jia-Qin Dong(董佳钦), Zhi-Yong Xie(谢志勇), Zhi-Yu He(贺芝宇), Hua Shu(舒桦), Rui-Rong Wang(王瑞荣), Jun Xiong(熊俊), Guo Jia(贾果), Zhi-Heng Fang(方智恒), Wei Wang(王伟), Da-Wu Xiao(肖大武), An-Le Lei(雷安乐), Jie Chen(陈洁), and Xiu-Guang Huang(黄秀光) Direct observation of shock-induced phase transformation in polycrystalline iron via in situ x-ray diffraction 2024 Chin. Phys. B 33 106101

[1] Birch F 1952 J. Geophys. Res. 57 227
[2] Hemley R J and Mao H K 2001 Int. Geol. Rev. 43 1
[3] Birch F 1961 Geophys. J. R. Astron. Soc. 4 295
[4] Kerley G I 1993 Multiphase equation of state for iron, Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)
[5] Batani D, Morelli A, Tomasini M, Benuzzi-Mounaix A, Philippe F, Koenig M, Marchet B, Masclet I, Rabec M and Reverdin C 2002 Phys. Rev. Lett. 88 235502
[6] Dewaele A, Loubeyre P, Occelli F, Mezouar M, Dorogokupets P I and Torrent M 2006 Phys. Rev. Lett. 97 215504
[7] Weng Y, Dong H and Gan Y 2011 Advanced steels: the recent scenario in steel science and technology (Berlin: Springer Science & Business Media) p. 15
[8] Hosford W F 2012 Iron and steel (Cambridge: Cambridge University Press) p. 195
[9] Sakai T, Takahashi S, Nishitani N, Mashino I, Ohtani E and Hirao N 2014 Phys. Earth Planet. Interiors 228 114
[10] Fischer R A and Campbell A J 2015 Am. Mineral. 100 2718
[11] Sakamaki T, Ohtani E, Fukui H, Kamada S, Takahashi S, Sakairi T, Takahata A, Sakai T, Tsutsui S and Ishikawa D 2016 Sci. Adv. 2 e1500802
[12] Sundaram V 1996 Bull. Mater. Sci. 19 1025
[13] Manes A, Serpellini F, Pagani M, Saponara M and Giglio M 2014 Int. J. Impact Eng. 69 39
[14] Bancroft D, Peterson E L and Minshall S 1956 J. Appl. Phys. 27 291
[15] Mao H K, Bassett W A and Takahashi T 1967 J. Appl. Phys. 38 272
[16] Mao H K, Wu Y, Chen L C, Shu J F and Jephcoat A P 1990 J. Geophys. Res. 95 21737
[17] Funamori N, Yagi T and Uchida T 1996 Geophys. Res. Lett. 23 953
[18] Rueff J P, Krisch M, Cai Y Q, Kaprolat A and Sette F 1999 Phys. Rev. B 60 14510
[19] Barker L M and Hollenbach R E 1974 J. Appl. Phys. 45 4872
[20] Brown J M and McQueen R G 1986 J. Geophys. Res.: Solid Earth 91 7485
[21] Boettger J C and Wallace D C 1997 Phys. Rev. B 55 2840
[22] Hawreliak J, Colvin J D, Eggert J H, Kalantar D H, Lorenzana H E, Stölken J S, Davies H M, Germann T C, Holian B L, Kadau K, Lomdahl P S, Higginbotham A, Rosolankova K, Sheppard J and Wark J S 2006 Phys. Rev. B 74 184107
[23] Remington T P, Remington B A, Hahn E N and Meyers M A 2017 Mater. Sci. Eng. A 688 429
[24] Jensen B J, Gray G T and Hixson R S 2009 J. Appl. Phys. 105 103502
[25] Wang J, Smith R F, Eggert J H, Braun D G, Boehly T R, Reed Patterson J, Celliers P M, Jeanloz R, Collins G W and Duffy T S 2013 J. Appl. Phys. 114 023513
[26] Azarevich A, Bolotina N, Khrykina O, Bogach A, Zhukova E, Gorshunov B, Melentev A, Bedran Z, Alyabyeva A, Belyanchikov M, Voronov V, Shitsevalova N Y, Filipov V B and Sluchanko N 2022 Chin. Phys. Lett. 39 127302
[27] Li X, Ding B, Feng Y, Wu R, Tian L, Huang J and Liu X 2022 Chin. Phys. Lett. 39 033401
[28] Kalantar D H, Belak J F, Collins G W, Colvin J D, Davies H M, Eggert J H, Germann T C, Hawreliak J, Holian B L, Kadau K, Lomdahl P S, Lorenzana H E, Meyers M A, Rosolankova K, Schneider M S, Sheppard J, Stolken J S and Wark J S 2005 Phys. Rev. Lett. 95 075502
[29] Hawreliak J A, El-Dasher B, Lorenzana H, Kimminau G, Higginbotham A, Nagler B, Vinko S M, Murphy W J, Whitcher T, Wark J S, Rothman S and Park N 2011 Phys. Rev. B 83 144114
[30] Li J, Chen X H, Wu Q, Luo B Q, Li M, Yang Q G, Tao T J, Jin K, Geng H Y, Tan Y and Xue T 2017 Acta Phys. Sin. 66 136101 (in Chinese)
[31] Wang F M and Ingalls R 1998 Phys. Rev. B 57 5647
[32] Mathon O, Baudelet F, Itie J P, Polian A, d’Astuto M, Chervin J C and Pascarelli S 2004 Phys. Rev. Lett. 93 255503
[33] Kadau K, Germann T C, Lomdahl P S, Albers R C, Wark J S, Higginbotham A and Holian B L 2007 Phys. Rev. Lett. 98 135701
[34] Denoeud A, Ozaki N, Benuzzi-Mounaix A, et al. 2016 Proc. Natl. Acad. Sci. USA 113 7745
[35] Lin Z, Deng X, Fan D, Wang S, Chen S, Zhu J, Qian L, Shen X, Xu F and Zhu J 1999 Fusion Eng. Des. 44 61
[36] Deng X, Liang X, Chen Z, Yu W and Ma R 1986 Appl. Opt. 25 377
[37] Rygg J R, Smith R F, Lazicki A E, Braun D G, Fratanduono D E, Kraus R G, McNaney J M, Swift D C, Wehrenberg C E, Coppari F, Ahmed M F, Barrios M A, Blobaum K J M, Collins G W, Cook A L, Di Nicola P, Dzenitis E G, Gonzales S, Heidl B F, Hohenberger M, et al. 2020 Rev. Sci. Instrum. 91 043902
[38] Celliers P M, Bradley D K, Collins G W, Hicks D G, Boehly T R and Armstrong W J 2004 Rev. Sci. Instrum. 75 4916
[39] Duvall G E and Graham R A 1977 Rev. Mod. Phys. 49 523
[40] Brown J M, Fritz J N and Hixson R S 2000 J. Appl. Phys. 88 5496
[41] Alnemrat S, Hooper J P, Vasiliev I and Kiefer B 2014 J. Phys.: Condens. Matter 26 046001
[42] Antonangeli D, Morard G, Paolasini L, Garbarino G, Murphy C A, Edmund E, Decremps F, Fiquet G, Bosak A, Mezouar M and Fei Y 2018 Earth Planet. Sci. Lett. 482 446
[1] New approach to measuring topological phase transitions utilizing Floquet technology
Xue-Ying Yang(杨雪滢), Wei Wu(吴伟), and Ping-Xing Chen(陈平形). Chin. Phys. B, 2024, 33(9): 090305.
[2] Noise-induced phase transition in the Vicsek model through eigen microstate methodology
Yongnan Jia(贾永楠), Jiali Han(韩佳丽), and Qing Li(李擎). Chin. Phys. B, 2024, 33(9): 090501.
[3] First-principles study on stability and superconductivity of ternary hydride LaYHx (x =2, 3, 6 and 8)
Xiao-Zhen Yan(颜小珍), Xing-Zi Zhou(周幸姿), Chao-Fei Liu(刘超飞), Yin-Li Xu(徐寅力), Yi-Bin Huang(黄毅斌), Xiao-Wei Sheng(盛晓伟), and Yang-Mei Chen(陈杨梅). Chin. Phys. B, 2024, 33(8): 086301.
[4] Topological phase transition in compressed van der Waals superlattice heterostructure BiTeCl/HfTe2
Zhilei Li(李志磊), Yinxiang Li(李殷翔), Yiting Wang(王奕婷), Wenzhi Chen(陈文执), and Bin Chen(陈斌). Chin. Phys. B, 2024, 33(8): 087102.
[5] Multi-functional photonic spin Hall effect sensor controlled by phase transition
Jie Cheng(程杰), Rui-Zhao Li(李瑞昭), Cheng Cheng(程骋), Ya-Lin Zhang(张亚林), Sheng-Li Liu(刘胜利), and Peng Dong(董鹏). Chin. Phys. B, 2024, 33(7): 074203.
[6] First-principles study of structural and electronic properties of multiferroic oxide Mn3TeO6 under high pressure
Xiao-Long Pan(潘小龙), Hao Wang(王豪), Lei Liu(柳雷), Xiang-Rong Chen(陈向荣), and Hua-Yun Geng(耿华运). Chin. Phys. B, 2024, 33(7): 076102.
[7] Two-dimensional Sb net generated nontrivial topological states in SmAgSb2 probed by quantum oscillations
Jian Yuan(袁健), Xian-Biao Shi(石贤彪), Hong Du(杜红), Tian Li(李田), Chuan-Ying Xi(郗传英), Xia Wang(王霞), Wei Xia(夏威), Bao-Tian Wang(王保田), Rui-Dan Zhong(钟瑞丹), and Yan-Feng Guo(郭艳峰). Chin. Phys. B, 2024, 33(7): 077102.
[8] Detecting the quantum phase transition from the perspective of quantum information in the Aubry-André model
Geng-Biao Wei(韦庚彪), Liu Ye(叶柳), and Dong Wang(王栋). Chin. Phys. B, 2024, 33(7): 070301.
[9] Triple points and phase transitions of D-dimensional dyonic AdS black holes with quasitopological electromagnetism in Einstein-Gauss-Bonnet gravity
Ping-Hui Mou(牟平辉), Qing-Quan Jiang(蒋青权), Ke-Jian He(何柯腱), and Guo-Ping Li(李国平). Chin. Phys. B, 2024, 33(6): 060401.
[10] Unveiling the pressure-driven metal-semiconductor-metal transition in the doped TiS2
Jiajun Chen(陈佳骏), Xindeng Lv(吕心邓), Simin Li(李思敏), Yaqian Dan(但雅倩), Yanping Huang(黄艳萍), and Tian Cui(崔田). Chin. Phys. B, 2024, 33(6): 067104.
[11] Non-Kramers doublet ground state in a quaternary cubic compound PrRu2In2Zn18 investigated by ultrasonic measurements
Hua-Yuan Zhang(张化远), Kazuhei Wakiya, Mitsuteru Nakamura, Masahito Yoshizawa, and Yoshiki Nakanish. Chin. Phys. B, 2024, 33(6): 064301.
[12] Surface doping manipulation of the insulating ground states in Ta2Pd3Te5 and Ta2Ni3Te5
Bei Jiang(江北), Jingyu Yao(姚静宇), Dayu Yan(闫大禹), Zhaopeng Guo(郭照芃), Gexing Qu(屈歌星), Xiutong Deng(邓修同), Yaobo Huang(黄耀波), Hong Ding(丁洪), Youguo Shi(石友国), Zhijun Wang(王志俊), and Tian Qian(钱天). Chin. Phys. B, 2024, 33(6): 067402.
[13] Effects of individual heterogeneity on social contagions
Fu-Zhong Nian(年福忠) and Yu Yang(杨宇). Chin. Phys. B, 2024, 33(5): 058705.
[14] Emergent topological ordered phase for the Ising-XY model revealed by cluster-updating Monte Carlo method
Heyang Ma(马赫阳), Wanzhou Zhang(张万舟), Yanting Tian(田彦婷), Chengxiang Ding(丁成祥), and Youjin Deng(邓友金). Chin. Phys. B, 2024, 33(4): 040503.
[15] Chimera states of phase oscillator populations with nonlocal higher-order couplings
Yonggang Wu(伍勇刚), Huajian Yu(余华健), Zhigang Zheng(郑志刚), and Can Xu(徐灿). Chin. Phys. B, 2024, 33(4): 040504.
No Suggested Reading articles found!