期刊文献+

Low-Temperature Heat Capacities and Standard Molar Enthalpy of Formation of Gramine (C11H14N2)

Low-Temperature Heat Capacities and Standard Molar Enthalpy of Formation of Gramine (C11H14N2)
原文传递
导出
摘要 Low-temperature heat capacities of gramine (C11H14N2) were measured by a precision automated adiabatic calorimeter over the temperature range from 78 to 401 K. A polynomial equation of heat capacities as a function of temperature was fitted by least squares method. Based on the fitted polynomial, the smoothed heat capacities and thermodynamic functions of the compound relative to the standard reference temperature 298.15 K were calculated and tabulated at 5 K intervals. The constant-volume energy of combustion of the compound at T=298.15 K was measured by a precision oxygen-bomb combustion calorimeter as △cU=-(35336.7±13.9) j·g^-1. The standard molar enthalpy of combustion of the compound was determined to be △cHm=-(6163.2±2.4) kJ·mol^-1, according to the definition of combustion enthalpy. Finally, the standard molar enthalpy of formation of the compound was calculated to be △cHm=-(166.2±2.8) kJ·mol-1 in accordance with Hess law. Low-temperature heat capacities of gramine (C11H14N2) were measured by a precision automated adiabatic calorimeter over the temperature range from 78 to 401 K. A polynomial equation of heat capacities as a function of temperature was fitted by least squares method. Based on the fitted polynomial, the smoothed heat capacities and thermodynamic functions of the compound relative to the standard reference temperature 298.15 K were calculated and tabulated at 5 K intervals. The constant-volume energy of combustion of the compound at T=298.15 K was measured by a precision oxygen-bomb combustion calorimeter as △cU=-(35336.7±13.9) j·g^-1. The standard molar enthalpy of combustion of the compound was determined to be △cHm=-(6163.2±2.4) kJ·mol^-1, according to the definition of combustion enthalpy. Finally, the standard molar enthalpy of formation of the compound was calculated to be △cHm=-(166.2±2.8) kJ·mol-1 in accordance with Hess law.
出处 《Chinese Journal of Chemistry》 SCIE CAS CSCD 2011年第11期2278-2284,共7页 中国化学(英文版)
基金 Project supported by the National Natural Science Foundations of China (Nos. 20673050, 20973089), the Natural Science Foundation of Shaanx Province (No. 2009JM2014), Key Project of Science Foundation from Shaanxi Educational College (No. 10KJ006) and Research Project of Natura Sciences from Educational Department of Shaanxi Province (No. 2010JK416).
关键词 ALKALOIDS adiabatic calorimetry low-temperature heat capacity oxygen-bomb combustion calorimetry standard molar enthalpy of formation THERMODYNAMICS alkaloids, adiabatic calorimetry, low-temperature heat capacity, oxygen-bomb combustion calorimetry standard molar enthalpy of formation, thermodynamics
  • 相关文献

参考文献12

  • 1Yang, X.-W. Handbook of Applied Natural Products, Chemical Industry Press, Beijing, 2004, p. 239 (in Chinese).
  • 2Yang, X.-W. Handbook of Applied Natural Products, Chemical Industry Press, Beijing, 2004, pp. 419--420 (in Chinese).
  • 3Di, Y.-Y.; Kong, Y.-X.; Yang, W.-W.; Tan, Z.-C. Chin. Phys. B 2008, 17, 3276.
  • 4Chatterjee, S.; Basumallick, I. J. Chin. Chem. Soc. 2008, 55, 17.
  • 5Tan, Z.-C.; Liu, B.-P.; Yan, J.-B.; Sun, L.-X. J. Comput. Appl. Chem. 2003, 20, 2648 (in Chinese).
  • 6Di, Y.-Y.; Tan, Z.-C.; Sun, X.-H.; Wang, M.-H.; Xu, F.; Liu,Y.-F.; Sun, L.-X.; Zhang, H.-T. J. Chem. Thermodyn. 2004, 36, 79.
  • 7Donald, G. A. J. Phys. Chem. Ref Data 1993, 22, 1441.
  • 8Yang, X.-W.; Chen, S.-P.; Gao, S.-L. Instrument. Sci. Technol. 2002, 30, 311.
  • 9Di, Y.-Y.; Wang, D.-Q.; Shi, Q.; Tan, Z.-C. Chin. Phys. B 2008, 17, 2859.
  • 10Popov, M. W. Thermometry and Calorimetry, Moscow University Publishing House, Moscow, 1954 (in Russian).

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部