[1]
Li Jun, Li Bing, Gao Shiyang. Thermochemistry of hydrated lithium borates [J]. J. Chem. Thermodynamics, 1998 (30) 681-688.
DOI: 10.1006/jcht.1997.0324
Google Scholar
[2]
Bassett, R.L., . The grochemistry of boron in thermal waters [D]. Ph. D. Dissertation, Stanford university, 1976, Amercian.
Google Scholar
[3]
Mattigod, S.V., . A method for estimating the standard free energy of formation of borate minerals [J]. Soil Science Society of America Journal, 1983 (47) 654-655.
DOI: 10.2136/sssaj1983.03615995004700040009x
Google Scholar
[4]
Li Jun , Li Bing, Gao Shiyang. Calculate the thermodynamic properties of hydrated borates by the group contribution method [J]. Journal of Salt Lakes Research, 1998, 6(4): 12-19.
Google Scholar
[5]
Li Jun , Li Bing, Gao Shiyang. Calculation of thermodynamic properties of hydrated borates by group contribution method [J]. Phys chem Minerals, 2000 (27) 324-346.
DOI: 10.1007/s002690050263
Google Scholar
[6]
Zhu Lixia, Gao Shiyang, Xia Shuping. Thermochemistry of hydrated lithium monoborates [J]. Thermochimica Acta, 2004 (419) 105-108.
DOI: 10.1016/j.tca.2004.01.037
Google Scholar
[7]
Li Ping, Liu Zhihong. Hydrothermal synthesis, characterization, and thermodynamic properties of a new lithium borates, Li3B5O8(OH)2 [J]. J. Chem. Eng. Data. 2010 ( 55) 2682-2686.
Google Scholar
[8]
Li Ping, Liu Zhihong. Synthesis, structure and thermodynamic property of a new lithium borates, Li4[B8O13(OH)2]·3H2O [J]. Chin. J. Chem. 2012 (30) 847-853.
DOI: 10.1002/cjoc.201100214
Google Scholar
[9]
Yin Guoyin, Yao Yan, Jiao Baojuan, et al. Enthalpies of dilution of aqueous Li2B4O7 solutions at 298. 15 K and application of ion-interaction model [J]. Thermochimica Acta, 2005 (435) 125-128.
DOI: 10.1016/j.tca.2005.04.007
Google Scholar
[10]
Zhang Zhiheng, Yin Guoyin, Tan Zhicheng, et. al. Heat capacities and thermedynamic propeties of a H2O + Li2B4O7 solution in the temperature range from 80 to 356 K [J]. J. Solution Chem 2006 (35) 1347-1355.
DOI: 10.1007/s10953-006-9065-6
Google Scholar
[11]
Zhang Aiyun, Yao Yan, Li Lijuan, et. al. Isopiestic determination of the osmotic coefficients and Piter model representation for Li2B4O7 at 298. 15 K [J]. J. Chem. Thermodynamics 2005 (37) 101-109.
DOI: 10.1016/j.jct.2004.07.028
Google Scholar
[12]
Zhang Aiyun, Yao Yan, Yang Jimin, et al. Isopiestic studies of thermodynamic properties and representation with ion-interaction model for Li2B4O7-MgCl2-H2O system at 298. 15 K [J]. Acta Chimica Sinica 2004: 62(12): 1089-1094.
Google Scholar
[13]
Zhang Aiyun, Yao Yan. Thermodynamic studies by electromotive force method and ion-interaction model for Li2B4O7-MgCl2-H2O system at 298. 15 K [J]. Acta. Chimica Sinica, 2006: 64(6): 501-507.
Google Scholar
[14]
Yin Guoyin, Yao Yan, Liu Zhihong. Enthalpies of dilution of aqueous mixed solutions of LiCl and Li2B4O7 at 298. 15 K [J]. Journal of Thermal Analysis and Calorimetry, 2009: 95(2): 377-380.
DOI: 10.1007/s10973-008-9239-0
Google Scholar
[15]
Yang Jimin, Yao Yan, Zhang Aiyun. Isopiestic studies on thermodynamic properties for LiCl-Li2B4O7-H2O system at 298. 15 K [J]. Journal of Salt Lake Research, 2004: 12(3): 31-38.
Google Scholar
[16]
Yang Jimin , Yao Yan, Zhang Aiyun, et al. Isopiestic shudies on thermodynamic properties for LiCl-Li2B4O7-H2O system at 273. 15 K. [J]. Journal of Salt Lake Research, 2005: 13(1): 19-24.
Google Scholar
[17]
Yuan Wenping, Yao Yan, Song Pengsheng. Isopiestic studies on the thermodynamic properties for Li2B4O7-Li2SO4-H2O system at 298. 15 K [J]. Journal of Salt Lake Research 2005: 13(4): 29-34.
Google Scholar
[18]
Li Jicai, Zhai Zongxi, Zeng Zhongmin, et al. Thermochemistry of Salt Lakes(Ⅵ), Heats of dilution. Heats Capacities and Apparent Molal Enthalpies of Li2B4O7-Li2SO4-LiCl-H2O system at 298. 15 K [J]. Journal of Salt Lake Research, 1993: 1(4): 34-38.
Google Scholar