Citation: Wang Xuan, Li Kuo, Zheng Haiyan, Zhang Peijie. Chemical Reactions of Molecules under High Pressure[J]. Chemistry, ;2019, 82(5): 387-398. shu

Chemical Reactions of Molecules under High Pressure

  • Corresponding author: Li Kuo, likuo@hpstar.ac.cn
  • Received Date: 3 December 2018
    Accepted Date: 6 February 2019

Figures(7)

  • Under high pressure (1~100 GPa and above), the composition, structure and chemical reaction of matters change significantly, and it is of great significance to understand the chemical reactions under high pressure. In general, molecules solidify under external pressure, unsaturated molecules tend to polymerize to form covalently bonded saturated material with higher density; diffusions of molecules and atoms are significantly restricted, and metastable compounds are often generated; the crystal structure of the reactants, the properties of the functional groups, the temperature and hydrostaticity have significant effects on the reaction. In situ and ex situ crystallography, spectroscopy, chemical characterization, and theoretical calculations are important for the study of the reaction process, and every effort on the synthesis, characterization, theoretical calculation under high pressure is a new step towards the interesting world under extreme condition.
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    1. [1]

      P F Mcmillan. High Pressure Res., 2003, 23(1~2):7~22. 

    2. [2]

      H K Mao, X Chen, Y Ding et al. Rev. Mod. Phys., 2018, 90:015007. 

    3. [3]

      K Matsumoto, A Sera, T Uchida. Synthesis, 1985, 1:1~26. 

    4. [4]

      P W Zhu, Q Tao, L Wang et al. Chin. Phys. B, 2018, 27(7):86~90.

    5. [5]

      Y B Wang, M Rivers, S Sutton et al. Phys. Earth Planet. Int., 2009, 174(5):270~281.

    6. [6]

      J Guignard, W A Crichton. Rev. Sci. Instrum., 2015, 86(8):085112. 

    7. [7]

      T Ishii, L Shi, R Huang et al. Rev. Sci. Instrum., 2016, 87(2):024501. 

    8. [8]

      H K Mao, R J Hemley. Rev. Mineral., 1998, 37:1~32.

    9. [9]

      H K Mao, P M Bell. Carnegie Inst. Yearb., 1978, 77:904.

    10. [10]

      R Boehler, K Hantsetters. High Press. Res., 2004, 24:391. 

    11. [11]

      V Schettino, R Bini. Phys. Chem., 2003, 5(10):1951~1965. 

    12. [12]

      H K Mao, J Xu, P M Bell. Geophys. Res., 1986, 91:4673~4676. 

    13. [13]

      J M Besson, R J Nelmes, G Hamel et al. Physica B, 1992, 180:907~910. 

    14. [14]

      W G Marshall, D J Francis. J. Appl. Crystallogr., 2002, 35:122~125. 

    15. [15]

      Z A Dreger, Y M Gupta. J. Phys. Chem. C, 2007, 111(15):3893~3903. 

    16. [16]

      K R Hirsch, W B Holzapfel. J. Chem. Phys., 1986, 84(5):2771~2775. 

    17. [17]

      J Wu, H Wang, S Xu et al. J. Phys. Chem. A, 2015, 119(8):1303~1308. 

    18. [18]

      M Ceppatelli, M Pagliai, R Bini et al. J. Phys. Chem. C, 2015, 119(1):130~140. 

    19. [19]

      T Yan, K Wang K, X Tan et al. J. Phys. Chem. C, 2014, 118(28):15162~15168. 

    20. [20]

      S Yamanaka, N S Kini, A Kubo et al. J. Am. Chem. Soc., 2008, 130(13):4303~4309. 

    21. [21]

      S Klotz, Th Strässle, B Lebert et al. High Press. Res., 2016, 36(1):1~6.

    22. [22]

      V P Ting, P F Henry, M Schmidtmann et al. Phys. Chem. Chem. Phys. 2012, 14(19):6914~6921. 

    23. [23]

      S Klotz, T Strässle, A M Saitta et al. J. Phys-Condens. Mat. 2005, 17(11):S967~S974. 

    24. [24]

      X Cui, T Hu, J Wang et al. High Press. Res., 2017, 37(5):1680~1682.

    25. [25]

      B Liu, Y Gao, Y Han et al. Phys. Lett. A, 2016, 380(37):2979~2983. 

    26. [26]

      M Li, C Gao. Appl. Phys. Lett., 2007, 90(11):113507~113509. 

    27. [27]

      Y Wang, Y Han, C Gao et al. Rev. Sci. Instrum., 2010, 81(1):013904. 

    28. [28]

      Y A Freiman, H J Jodl. Phys. Rep., 2004, 401:1~228.

    29. [29]

      S Desgreniers, Y K Vohra, A L Ruoff. J. Phys. Chem., 1990, 94:1117~1122. 

    30. [30]

      G Weck, P Loubeyre, R LeToullec. Phys. Rev. Lett., 2002, 88:035504. 

    31. [31]

      L F Lundegaard, G Weck, M I McMahon et al. Nature, 2006, 443:201~204. 

    32. [32]

      J B Neaton, N W Ashcroft. Phys. Rev. Lett., 2002, 88:205503. 

    33. [33]

      K Shimizu, K Suhara, M Ikumo et al. Nature, 1998, 393(393):767~769. 

    34. [34]

      D Plašienka, R Martoňák. J. Chem. Phys., 2015, 142(9):094505. 

    35. [35]

      C Mailhiot, L H Yang, A K McMahan. Phys. Rev. B, 1992, 46:14419. 

    36. [36]

      R L Mills, B Olinger, D T Cromer. J. Chem. Phys., 1986, 84:2837~2845. 

    37. [37]

      M I Eremets, A G Gavriliuk, I A Trojan et al. Nat. Mater., 2004, 3(8):558~563. 

    38. [38]

      W J Evans, M J Lipp, C S Yoo et al. Chem. Mater., 2006, 18:2520~2531. 

    39. [39]

      I G Batyrev. Mater. Res. Soc. Symp. Proc., 2015, 1757(2):39007.

    40. [40]

      M E Kooi, J A Schouten, A M V D Kerkhof et al. Geochim. Cosmochim. Acta, 1998, 62(16):2837~2843. 

    41. [41]

      C Zhu, Q Li, Y Zhou et al. J. Phys. Chem. C, 2014, 118(47):27252~27257. 

    42. [42]

      R H Wentorf Jr. J. Phys. Chem., 1965, 69:3063~3069. 

    43. [43]

      S Block, C E Weir, G J Piermarini. Science, 1970, 169(3945):586~587. 

    44. [44]

      A D Chanyshev, K D Litasov, S V Rashchenko. Crystal Growth Design, 2018, 18(5):3016~3026. 

    45. [45]

      B R. Jackson, C C Trout, J V Badding. Chem. Mater., 2003, 15:1820~1824. 

    46. [46]

      T C Fitzgibbons, M Guthrie, E Xu et al. Nat. Mater., 2015, 14:43~47. 

    47. [47]

      L Ciabini, M Santoro, F A Gorelli et al. Nat. Mater., 2007, 6:39~43. 

    48. [48]

      X D Wen, R Hoffmann, N W Ashcroft. J. Am. Chem. Soc., 2011, 133(23):9023~9035. 

    49. [49]

      Y Wang, X Dong, X Tang et al. Angew. Chem. Int. Ed., 2018, 58(5):1468~1473.

    50. [50]

      K K Zhuravlev, K Traikov, Z Dong et al. Phys. Rev. B, 2010, 82(6):064116. 

    51. [51]

      T Yasuzuka, K Komatsu, H Kagi. Chem. Lett., 2011, 31:110271.

    52. [52]

      X Li, T Wang, P Duan et al. J. Am. Chem. Soc., 2018, 140(15):4969~4972. 

    53. [53]

      S Fanetti, M Citroni, R Bini. J. Chem. Phys., 2011, 134(20):1820~7663.

    54. [54]

      M M Nobrega, M L A Temperini, R Bini. J. Phys. Chem. C, 2017, 121(13):7495~7501. 

    55. [55]

      M M Nobrega, N E Teixeira, A B Cairns et al. Chem. Sci., 2018, 9(1):254~260. 

    56. [56]

      M Santoro, F A Gorelli, R Bini et al. PNAS, 2012, 109(14):5176~5179. 

    57. [57]

      V Iota, C Yoo, J H Klepeis et al. Nat. Mater., 2007, 6:34~38. 

    58. [58]

      K Aoki, B J Baer, H C Cynn et al. Phys. Rev. B, 1990, 42:4298~4303. 

    59. [59]

      H Zheng, K Li, G D Cody et al. Angew. Chem. Int. Ed., 2016, 55:12040~12044. 

    60. [60]

      M Khazaei, Y Liang, N S Venkataramanan et al. Phys. Rev. B, 2012, 85(5):167~172.

    61. [61]

      K Aoki, Y Kakudate, M Yoshida et al. J. Chem. Phys., 1989, 91(2):778~782. 

    62. [62]

      Y Tian, X Xu, Z Zhao. Int. J. Refract. Met. H., 2012, 33:93~106. 

    63. [63]

      A Y Liu, M L Cohen. Science, 1989, 245(4920):841~842. 

    64. [64]

      D M Teter, R J Hemley. Science, 1996, 271(5245):53~55. 

    65. [65]

      L Fang, H Ohfuji, T Shinmei et al. Diam. Relat. Mater., 2011, 20(5~6):819~825. 

    66. [66]

      A Polian, M Grimsditch. Phys. Rev. Lett., 1984, 52(15):1312~1314. 

    67. [67]

      Y Wang, H Liu, J Lv et al. Nat. Commun., 2011, 2(1):563. 

    68. [68]

      K Soderlund, M Heimpel, E King et al. Icarus, 2013, 224:97~113. 

    69. [69]

      C Bellin, A Mafety, C Narayana et al. Phys. Rev. B, 2017, 96:094110. 

    70. [70]

      R Redmer, T R Mattsson, N Nettelmann et al. Icarus, 2011, 211:798~803. 

    71. [71]

      N Nettelmann, R Helled, J Fortney et al. Planet. Space Sci., 2013, 77:143~151. 

    72. [72]

      V N Robinson, Y Wang, Y Ma et al. PNAS, 2017, 114(34):9003~9008. 

    73. [73]

      H Wang, J Zeuschner, M Eremets et al. Sci. Rep., 2016, 6:19902. 

    74. [74]

      A F Goncharov, M R Manaa, J M Zaug et al. Phys. Rev. Lett., 2005, 94(6):065505. 

    75. [75]

      B F Johnston, W G Marshall, S Parsons et al. J. Phys. Chem. B, 2014, 118(14):4044~4051. 

    76. [76]

      I D H Oswald. CrystEngComm, 2011, 13(14):4503~4507. 

    77. [77]

      L Ciabini, M Santoro, F A Gorelli, R Bini et al. Nat. Mater., 2007, 6:39~43. 

    78. [78]

      W Grochala, R Hoffmann, J Feng et al. Angew. Chem. Int. Ed., 2007, 46:3620~3642. 

    79. [79]

      M Ceppatelli, R Bini, M Caporali et al. Angew. Chem. Int. Ed., 2013, 52(8):2313~2317. 

    80. [80]

      M Ceppatelli, S Fanetti, R Bini. J. Phys. Chem. C, 2013, 117(25):13129~13135. 

    81. [81]

      M Citroni, M Ceppatelli, R Bini et al. Science, 2002, 295:2058~2060. 

    82. [82]

      J P Rueff, A Mattila, J Badro et al. J. Phys. Conden. Matter, 2005, 17(11):S717~S726. 

    83. [83]

      Y L Li, W Luo, Z Zeng, HQ Lin et al. PNAS, 2013, 110:9289~9294. 

    84. [84]

      Q Wei, Q Zhang, M Zhang. Materials, 2016, 9(7):570. 

    85. [85]

      H Zheng H, L Wang, Li K et al. Chem. Sci., 2016, 8(1):298~304.

    86. [86]

      I Efthimiopoulos, K Kunc, S Karmakar et al. Phys. Rev. B, 2010, 82(13):557~557.

    87. [87]

      X Q Chen, C L Fu, C Franchini. J. Phys. A, 2010, 22(29):292201. 

    88. [88]

      P Karen, A Kjekshus, Q Huang, V L Karen. Alloys Compd., 1999, 282:72~75. 

    89. [89]

      H Fjellvaag, P Karen. Inorg. Chem., 1992, 31:3260~3263. 

    90. [90]

      Y L Li, S N Wang, A R Oganov et al. Nat. Commun., 2015, 6:6974. 

    91. [91]

      M Schroeder, H Hillebrecht. J. Am. Chem. Soc., 2009, 131:12172~12179. 

    92. [92]

      D Hou, F Zhang, C Ji et al. J. Appl. Phys., 2011, 110(2):023524. 

    93. [93]

      D M Li, P Zhu, Y Wang et al. RSC Adv., 2016, 6:82270~82276. 

    94. [94]

      N Holtgrewe. J. Phys. Chem. C, 2016, 120(49):28176~28185. 

    95. [95]

      J Zhang, Z Zeng, H Q Lin, Y L Li. Sci. Rep., 2014, 4:4358. 

    96. [96]

      H Tang, B Wang, B Gao et al. Adv. Sci., 2018, 5(11):1800666. 

    97. [97]

      W Zhang, A R Oganov, A F Goncharov et al. Science, 2013, 342(6165):1502~1505. 

    98. [98]

      P Loubeyre, M Jean-Louis, R LeToullec et al. Phys. Rev. Lett., 1993, 70:178~181. 

    99. [99]

      H Liu, Y Yao, D D Klug. Phys. Rev. B, 2015, 91:014102. 

    100. [100]

      X Dong, A R Oganov, A F Goncharov et al. Nat. Chem., 2017, 70(a1):440~445. 

    101. [101]

      Z Liu, J Botana, A Hermann et al. Nat. Commun., 2018, 9(1):951. 

    102. [102]

      S B Schneider, R Frankovsky, W Schnick. Angew. Chem. Int. Ed., 2012, 51:1873~1875. 

    103. [103]

      Y Zhang, W Wang, Y Wang et al. J. Am. Chem. Soc. 2017, 139(39):13798~13803. 

    104. [104]

      R LeSar. J. Chem. Phys., 1987, 86:1485~1490. 

    105. [105]

      K Aoki, S Usuba, M Yoshida et al. J. Chem. Phys., 1988, 89:529~534. 

    106. [106]

      K Aoki, Y Kakudate, S Usuba et al. J. Chem. Phys., 1988, 88:4565~4568. 

    107. [107]

      C C Trout, J V Badding. Phys. Chem. A, 2000, 104:8142~8145. 

    108. [108]

      M Ceppatelli, M Santoro, R Bini. Chem. Phys., 2000, 113:5991~6000. 

    109. [109]

      J Sun, X Dong, Y Wang. Angew. Chem. Int. Ed., 2017, 56(23):6553~6557. 

    110. [110]

      H Y Zheng, K Li, G D Cody et al. Angew. Chem. Int. Ed., 2016, 128(39):12219~12223. 

    111. [111]

      N Tian, Y Gao, Y Li et al. Angew. Chem. Int. Ed., 2016, 128:654~658. 

    112. [112]

      L Wang, X Dong, Y Wang et al. J. Phys. Chem. Lett., 2017, 8(17):4241~4245. 

    113. [113]

      X Dong, L Wang, K Li et al. J. Phys. Chem. C, 2018, 122(35):20506~20512. 

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