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1.
丙氨酸离子液体[C4mim][Ala]的热化学性质   总被引:2,自引:1,他引:1  
在298.15 K下利用恒温环境溶解热量计测定了一系列含有已知微量水的1-丁基-3-甲基咪唑丙氨酸盐([C4mim][Ala])离子液体(IL)不同浓度样品的摩尔溶解焓. 借助Debye-Hückel极限项, 用外推法确定了不同含水量的[C4mim][Ala]样品的标准摩尔溶解焓[ΔsHm0(wc)]. 随着样品中水含量的增加, ΔsHm0(wc)的绝对值下降, 将ΔsHm0(wc)对含水量作图得到很好的直线, 其截距ΔsHm0(pure IL)=-60.74 kJ/mol, 可看作是不含水的[C4mim][Ala]标准摩尔溶解焓的估算值. 利用精密氧弹热量计测定了[C4mim][Ala]的燃烧热, 计算得到其标准摩尔生成焓ΔfHm0=(-675±11) kJ/mol.  相似文献   

2.
采用波波夫型外套等温量热计,已测得一级标准KCl在水中的积分溶解热为ΔH298=17532J/mol±0.1%.此结果与米献科报导的结果相一致,证明此仪器本身是可靠的.用此仪器测得La(NO3)3·6H2O在乙醇中的积分溶解热为ΔH298=9.713±0.2KJ/mol.  相似文献   

3.
在298.15 K下,利用等温环境溶解反应热量计,测定了离子液体[Cnmim][H2PO4] (n= 3, 4, 5, 6) (1-烷基-3-甲基咪唑磷酸盐)在水中不同浓度的摩尔溶解热(ΔsolHm),根据Pitzer电解质溶液理论计算得到了标准摩尔溶解焓(ΔsolHm0)和Pitzer焓参数:βMX(0)L, βMX(1)L,和CϕL,并计算了表观相对摩尔焓。通过推导讨论,得到了离子液体[Cnmim][H2PO4](n= 3, 4, 5, 6)同系物每摩尔亚甲基对标准摩尔溶解焓的贡献。  相似文献   

4.
无水苯甲酸锂的合成、结构表征及热化学研究   总被引:1,自引:1,他引:0  
用分析纯苯甲酸和一水氢氧化锂作为反应物, 采用水热合成法制得苯甲酸锂. 利用X射线粉末衍射、FTIR、元素分析及化学分析等方法对样品进行组成和结构表征. 采用精密自动绝热热量计测量了其在80~400 K范围内的摩尔热容, 利用最小二乘法将此温区热容实验值对折合温度进行拟合, 得到热容随温度变化的多项式方程. 通过设计合理的热化学循环, 选用0.1 mol/L HCl溶液作为量热溶剂, 利用等温环境溶解-反应热量计分别测定合成反应的反应物和产物在所选溶剂中的溶解焓, 得到反应焓ΔrHm0=-(9.75±0.27) kJ/mol. 利用Hess定律计算出苯甲酸锂的标准摩尔生成焓ΔfHm0(C6H5COOLi, s)=-(307.82±0.57) kJ/mol.  相似文献   

5.
用中和法合成了氨基酸离子液体1-乙基-3-甲基咪唑丙氨酸([C2mim][Ala]),并利用恒温环境的溶解反应热量计,在(288.15±0.01) K-(308.15±0.01) K温度范围内每隔5 K,测定不同质量摩尔浓度离子液体在水中的溶解焓(ΔsolHmθ).根据Archer的方法,通过线性拟合得到了该离子液体的标准摩尔溶解焓(Δsol),并计算了其相对表观摩尔溶解焓(ΦL).在298.15 K下,根据Glasser经验方法得到了格子能UPOT = 566 kJ·mol-1,并计算了其阴阳离子水化焓值(ΔH+ + ΔH-) = -620 kJ·mol-1及阴离子水化焓ΔH-([Ala]-) = -387 kJ·mol-1.此外,估算了[C2mim][Ala]水溶液的热容(Cp(sol))和表观摩尔热容(ΦCp).  相似文献   

6.
测定了2,3-二氰基-2,β-二苯基丁二酸二乙酯meso-异构体熔融相的热异构化反应动力学及苯环对位为X(X=OCH3,CH3,H,Cl,NO2)的相应二乙酯反应中间体自由基的EPR谱,自由基的结构由计算机模拟确定.结果表明,在实验温度范围内,平衡常数随温度的升高而降低.热力学数据为:ΔHdl-meao= - 18.02 kJ/mol, ΔSdl-meao= - 26.51 J/mol·K, ΔH = 151.78 kJ/mol, ΔS = 71.64 J/mol·K.反应机理是内消旋体的中心碳-碳键发生均裂,生成α-氰基-α-乙氧甲酰基-P-X取代苄基自由基,再重新结合时发生异构化,生成dl-异构体.  相似文献   

7.
用表面张力法、电导法和稳态荧光法研究了手性Gemini表面活性剂[C12-m-C12] Na2(m=2,4,6)和[C12-T-C12] Na2的表面性能及临界胶束聚集数,并计算胶束形成的热力学参数,用圆二色谱法考察了[C12-2-C12] Na2在不同浓度下的立体构型. 结果表明,手性Gemini表面活性剂的临界胶束浓度(cmc)和临界表面张力γcmc随着连接基链长增加或刚性增强而增大;ΔGm0和ΔHm0为负值,|ΔHm0|比|-TΔSm0|小很多,说明胶束化过程为熵驱动的自发放热过程;随着连接基链长增加或刚性增强,ΔGm0和ΔHm0逐渐增大,ΔSm0和临界胶束聚集数逐渐减小,表明其胶束化能力随之降低;当浓度大于cmc时,手性Gemini表面活性剂可形成手性超分子聚集体.  相似文献   

8.
合成了2个新化合物7-羟基-8-(3-氯苯甲酰基)-4-甲基香豆素(1)和7-羟基-6-(3-氯苯甲酰基)-4-甲基香豆素(2). X射线单晶衍射分析表明, 2个化合物的晶体同属于单斜晶系, P21/c空间群, 化合物1: a=1.21527(14) nm, b=1.01550(12) nm, c=1.5045(2) nm, β=112.377(2)°, V=1.7169(4) nm3, Dc=1.396 g/cm3, Z=4, F(000)=752, R1=0.0415, wR2=0.0981[I>2σ(I)], S=1.063; 化合物2: a=2.0168(2) nm, b=0.76229(12) nm, c=2.25497(17) nm, β=123.987(6)° , V=0.8745(6) nm3, Dc=1.454 g/cm3, Z=8, F(000)=1296, R1=0.0604, wR2=0.1384[I>2σ(I)], S=0.948. 抗菌实验结果表明, 2个化合物对大肠杆菌(E. coli)、 枯草杆菌(B. subtilis)和金色葡萄球菌(S. aureus) 均有中等程度的抑制作用; 体外抗氧化实验结果表明, 2个化合物对超氧阴离子自由基(O2-·)、 羟基自由基(·OH)和二苯代苦味肼基自由基(DPPH·)均有良好的清除能力. 采用荧光光谱法研究了不同温度下2个化合物与牛血清白蛋白(BSA)的相互作用, 结果表明, 2个化合物对BSA 的荧光猝灭均属于静态猝灭; 热力学数据表明, 化合物1(ΔH>0, ΔS>0, ΔG<0)与BSA主要以疏水作用力相结合, 化合物2(ΔH<0, ΔS<0, ΔG<0)与BSA主要以氢键或范德华力相结合; BSA与化合物1和化合物2间的距离分别为2.59和2.38 nm, 说明2个化合物与BSA 之间可能发生了非辐射能量转移.  相似文献   

9.
稀散金属铟的离子液体EMIInCl4的热化学性质研究   总被引:2,自引:2,他引:0  
杨家振  关伟  王恒  李垒  张庆国 《化学学报》2006,64(13):1385-1388
在充满干燥氩气的手套箱中用直接混合等物质的量的EMIC(氯化1-甲基-3-乙基咪唑)和高纯无水InCl3的方法, 制备了含稀散金属铟的离子液体EMIInCl4. 在298.15 K下, 利用自行组装的具有恒温环境的溶解反应热量计, 测定了离子液体EMIInCl4和EMIC在水中的反应溶解热, 并将这些实验数据按Pitzer方程作拟合, 分别得到了EMIInCl4和EMIC的无限稀释摩尔溶解热ΔsHm0和Pitzer溶解焓参数. 根据溶解热和水化热数据, 估算了InCl4(g)解离成In3+(g)和4Cl(g)的解离热, 还估算了反应: EMIC+InCl3→EMIInCl4的摩尔反应热ΔrHm=(-60.37±1.8) kJ•mol-1. 在合成离子液体EMIInCl 4中也观察到了放热现象, 这表明在合成过程中生成了InCl4.  相似文献   

10.
以4-环己烯-1,2-二甲酸二(N,N-二甲基胺基乙基)酯为原料,分别与溴代十二烷、溴代十四烷和溴代十六烷发生季铵化反应,合成了含环己烯酯基的双子阳离子表面活性剂3a、 3b和3c(3a和3b为新化合物),收率55.8%、 62.6%和58.9%,其结构经1H NMR, IR和HR MS(ESI)表征。研究了3a、 3b和3c的表面活性。结果表明:3种表面活性剂的Krafft点均低于0 ℃;乳化时间分别为310 s、 435 s和519 s; 3a起泡性最好,3种表面活性剂均具有良好的稳泡性。采用Gibbs 吸附方程计算了表面活性参数(Γmax、 Amin和pc20)及胶束形成的热力学参数(ΔGθm、 ΔHθm和ΔSθm)。结果表明:3种表面活性剂的表面活性均较高,胶束形成为熵驱动的自发放热过程。  相似文献   

11.
微量热法研究漆酶和3,4,5-三羟基苯甲酸的反应   总被引:1,自引:0,他引:1  
用LKB-2107型微量热系统,在不同的温度(pH=7.4)条件下,测定了3,4,5-三羟基苯甲酸与漆酶反应的摩尔反应烙、米氏常数、反应速率常数、漆酶的活性并计算了结合能、活化自由能、活化能和活化烟等.在此基础上,应用过渡态理论,从能量变化的角度,对其催化过程进行了分析.由活化摘(△ST<0)得出酶-底物过渡态的结构较酶-底物复合物更为有序的结论.  相似文献   

12.
A 2-pyrazine carboxylate lithium monohydrate [Li(pyza)(H2O)]n was synthesized in a mixed solution of redistilled water and anhydrous ethanol. X-Ray crystallography was applied to characterizing its crystal structure. Low temperature molar heat capacities were measured in a temperature range of from 78 K to 400 K with a precision automatic adiabatic calorimeter. Two polynomial equations of experimental molar heat capacity as a function of temperature were obtained by the least-squares method. The smoothed molar heat capacities and thermodynamic functions of the compound were calculated based on the fitted polynomial equations. In accordance with Hess's law, a reasonable thermochemical cycle was designed based on the preparation reaction of the target compound. The standard molar enthalpies of dissolution for the reactants and products of the designed thermochemical reaction were measured by an isoperibol solution-reaction calorimeter, and the enthalpy change of the reaction was obtained, i.e.,ΔrHmθ=-(30.084±0.329) kJ/mol. The standard molar enthalpy of the formation of the target compound was determined as ΔfHθm{[Li(pyza)(h2o)]n(s)}=-(260.844±1.178) kJ/mol based on the enthalpy change of the reaction and standard molar enthalpies of the formation of other reactants and products. In addition, UV-Vis spectroscopy and the data of the refractive indexes were used to confirm whether the designed Hess thermochemical cycle was reasonable and reliable.  相似文献   

13.
微量热法研究过氧化氢酶反应   总被引:4,自引:1,他引:3  
利用微量热法和热动力学方程研究了过氢化氢酶反应.该反应遵循Michaelis-Menten动力学,298.15K和pH7.0时,其米氏常数、酶转换数以及摩尔反应焓分别为2.36×10-2mol/L、1.20×104s-1和-83.67kJ·mol-1.过氧化氢酶反应后期对底物是一级反应,其总反应速度常数和一级速度常数分别为ko=6.31×105L·mol-1·s-1和k1=6.31×105/[Eo]s-1.该反应服从Ogura机理,其酶-底物三元复合物的分解速度常数为6.00×103s-1.  相似文献   

14.
双核Salen锌配合物对含氮小分子的分子识别研究   总被引:1,自引:0,他引:1  
合成并表征了由一定长度烷氧链桥连的新型双核SalenZn配合物[简记为C10-(SalenZn)2],用紫外-可见光谱滴定方法测定了主体C10-(SalenZn)2与单齿客体咪唑(Im)、吡啶(Py)、双齿客体DABCO(1,4-重氮双环[2.2.2]辛烷)及吡嗪(Pyrazine)等4种含氮客体间的轴向配位反应的配位数及缔合常数.结果表明,双核主体与咪唑、吡啶和吡嗪的配位数均为2,与DABCO的配位数为1;各主客体体系的缔合常数按K0(Im)>K0(DABCO)>K0(Pyrazine)>K0(Py)顺序递减.各主客体缔合反应的热力学参数ΔrH0mrS0m和ΔrG0m结果表明,此类识别过程均为放热和熵减少的过程.采用1HNMR方法和分子动力学构象搜索方法对主体C10-(SalenZn)2与双齿客体DABCO间的分子识别行为及产物构型作了合理解释.通过量子化学计算进一步解释了主客体识别过程中光谱性质的变化.  相似文献   

15.
A novel energetic combustion catalyst, 4-amino-3,S-dinitropyrazole copper salt ([Cu(adnp)2(H2O)2]), was synthesized in a yield of 93.6% for the first time. The single crystal of [Cu(adnp)2(H2O)2] was determined by single crystal X-ray diffraction. It crystallizes in a triclinic system, space group p^-1 with crystal parameters a = 5.541(3) A, b = 7.926(4) A, c = 10.231(5) A,β = 101.372(8)°, V = 398.3(3) A3, Z = 1, μ = 1.467 mm^-1, F(0 0 0) = 243, and Dc = 2.000 g cm^-3. The thermal behavior and non-isothermal decomposition reaction kinetics of [Cu(adnp)2(H2O)2] were studied by means of different heating rate differential scanning calorimetry (DSC). The kinetic equation of major exothermic decomposition reaction for [Cu(adnp)2(H2O)2] was obtained. The entropy of activation (△S≠), enthalpy of activation (△H≠), free energy of activation (△G≠), the self-accelerating decomposition temperature (TSADT) and the critical temperature of thermal explosion (Tb) are 59.42 j mol^-1 K^-1, 169.5 kJ mol^-1, 1141.26 kJ mol ^-1 457.3 K and 468.1 K, respectively.  相似文献   

16.
The thermal decomposition kinetics of 1-amino-l,2,3-triazolium nitrate(ATZ-NO3) was investigated by non-isothermal TG-DTG at various heating rates(2,5,10,15 and 20 ℃/min).The results show that the thermal decomposition of ATZ-NO3 consists of two stages corresponding to the losing of nitrate anion,substituent group and the splitting of triazole ring respectively.The kinetic triplets of the two stages were described by a three-step method.First,the differential Kissinger and intergral Ozawa methods were used to calculate the apparent activation energies(E) and pre-exponential factors(A) of the two decomposition stages.Second,two calculation methods(intergral (S)atava-(S)esták and differential Achar methods) were used to obtain several probable decomposition mechanism functions.Third,three judgment methods(average,double-extrapolation and Popescu methods) were used to confirm the most probable decomposition mechanism functions.Both reaction models of the two stages were randominto-nucleation and random-growth mechanisms with n=3/2 for the first stage and n=1/3,m=3 for the second stage.The kinetic equations for the two decomposition stages of ATZ-NO3 may be expressed as da/dt=1013.60·e-128970/RT(1-α)[-1n(1-α)]-1/2 and da/dt=1011.41·e-117370/RT(1-α)[-1n(1-α)]-2/3.The thermodynamic parameters including Gibbs free energy of activation(△G≠),entropy of activation(△S≠) and enthalpy of activation(△H≠),for the thermal decomposition reaction were also derived.  相似文献   

17.
In recent years much work has been done on the syntheses and properties of axial coordination reaction of zinc tetraphenylporphyrins with nitrogenous donors in order to better understand the detailed molecuar mechanism of natural zincous enzymes. However,only a few studies have been reported in which the nitrogenous donors are bound to the amino acid metallotetraphenylporphyrins with unsymmetric structures. In this paper, a new unsymmetric leucine tetraphenylporphyrin, 5-(4-leucine butoxyphenyl)-10,15,20-triphenylporphyrin (H2[Leu-TPP]) and its Zn(Ⅱ) complex (Zn[Leu-TPP]) are synthesized. Their structures are characterized by elemental analysis, UV, IR, fluorescense spectra. The changes of the electronic absorption spectra of axial coordination reaction of Zn[Leu-TPP] with pyrimidine in chloroform are investigated Coordination number (n) and equilibrium constant (β) of the reaction are measured by visible spectra techniques. The changes of standard molar enthalpy (ΔrHm) and molar entropy (ΔrSm) of the reaction are calculated. The obtained data are listed in table 1.  相似文献   

18.
A novel energetic combustion catalyst, 1,8-dihydroxy-4,5-dinitroanthraquinone manganese salt (DHDNEMn), was synthesized by virtue of the metathesis reaction in a yield of 91%, and its structure was characterized by IR, element analysis and differential scanning calorimetry(DSC). The thermal decomposition reaction kinetics was studied by means of different heating rate DSC. The results show that the apparent activation energy and pre-exponential factor of the exothermic decomposition reaction of DHDNEMn obtained by Kissinger's method are 162.3 kJ/mol and 1011.8 s^-1, respectively. The kinetic equation of major exothermic decomposition reaction of DHDNEMn is dα/dT= 10^118/β 2/5(1-α)[-ln(1-α)[-ln(1-α)]^3/5 exp(-1.623×10^5/RT). The entropy of activation(△S^≠), enthalpy of activation(△H^≠) and free energy of activation(A△G^≠) of the first thermal decomposition are -24.49 J·mol^-1·K^-1, 185.20 kJ/mol and 199.29 kJ/mol(T=575.5 K), respectively. The self-accelerating decomposition temperature(TSADT) and critical temperature of thermal explosion(Tb) are 562.9 and 580.0 K, respectively. The above-mentioned information on the thermal behavior is quite useful for analyzing and evaluating the stability and thermal safety of DHDNEMn.  相似文献   

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