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1.
陈沫  宋纪蓉  马海霞 《化学通报》2015,78(6):532-541
运用DFT-w B97/6-31+G**方法对23种1,2,4,5-四嗪衍生物的几何结构、自然键轨道(NBO)和生成焓(EOF)进行研究,并在此基础上运用Kamlet-Jacobs方程估算衍生物的爆轰性能,得到其爆速在6.69~9.37 km/s之间;基于统计热力学,求得部分标题化合物在200~800 K温度范围内的热力学性质,随温度T升高,热容Cp、熵Sm及焓Hm逐渐增大。根据最小键级理论,C-R(取代基)键和N-R键可能是1,2,4,5-四嗪衍生物高温裂解的热引发键。综合分析,基团-NO2、-N3和-N=N-有助于提高四嗪衍生物的生成焓和爆轰性能,3,6-二硝基-1,2,4,5-四嗪和3,6-二偶氮基-二硝基-1,2,4,5-四嗪从能量、爆轰性能上可以作为高能量密度材料候选物。  相似文献   

2.
在B3LYP/aug-cc-pvDZ理论水平上研究了CN,NO2,NH2,N3,N2H,NHNH2,N4H和N4H3含氮取代基取代1,2,4,5-四嗪环上的两个氢原子生成的衍乍物,预测了它们的分f构犁、分解能及含能性质.对衍生物分解能的研究结果表明.CN取代的衍生物的分解能比未取代时更高,而其余基团的取代使分解能降低.生成热的研究显示取代基化合物的生成热越大,取代1,2,4,5-四嗪中的氢原子后生成衍生物的牛成热也越大;CN,N3和N4H取代的1,2,4,5-四嗪衍生物的单位原子生成热在83.1~95.2 kJ,比文献报道的三叠氮基-均三嗪的(70.2 kJ)更高;N4H,N3,N4H3,N2H和CN取代的1,2,4,5-四嗪衍生物,生成热在904.9~1496.6 kJ·mol-1,但N4H和N4H3取代的衍生物分解能较小,稳定性较差.  相似文献   

3.
1,2,4,5-四嗪衍生物具有抗肿瘤,杀菌,杀虫等活性,我们曾合成了具有抗肿瘤活性的N,N′-二苯基-3,6-二甲基-1,4-二氢-1,2,4,5-四嗪-1,4-二甲酰胺(3a)[1,2,3],合成路线见图1.研究它们的抗肿瘤活性时发现该化合物的苯环间位若以N,N-二甲基取代,对小鼠白血病细胞(P-388)和人肺腺癌细胞(A-549)有很强的抗肿瘤活性.  相似文献   

4.
以3,6-对(3,5-二甲基吡唑)-1,2,4,5-四嗪(BT)为起始物,经亲核取代、氧化脱氢、氨解和水解等四步反应,合成了高氮含能化合物3,3′-偶氮-(6-氨基-1,2,4,5-四嗪)(DAAT)。对DAAT的热分解性能进行了研究,由DSC、PDSC和TG-DTG技术获得了DAAT的热分解动力学参数和机理函数。结果表明,DAAT的热稳定性好,能量高。在5℃/min升温速率下,DAAT在283℃左右开始分解,放热峰值320℃,分解放热峰的分解焓为1974·33J/g,高于相同条件下硝胺系炸药HMX的分解焓;采用Kissinger法和Ozawa法求得其活化能分别为209·69和208·77kJ/mol;其热分解速率对压强比较敏感,且与环境压强成正比。采用VLWEOS对DAAT的爆轰性能进行了理论计算,结果表明将DAAT与传统含能材料混合,有望制备出高能钝感炸药。  相似文献   

5.
3,6-二叠氮基-1,2,4,5-四嗪的合成及理论研究   总被引:4,自引:0,他引:4  
以3,6-双(3,5-二甲基吡唑基)-1,2,4,5-四嗪为原料, 经过肼解反应和重氮化反应, 制得了3,6-二叠氮基-1,2,4,5-四嗪(DAT). 在DFT-B3LYP/6-31G*水平下求得了DAT的分子几何、IR光谱和热力学性质. 计算模拟IR光谱和实测IR光谱的对比表明DAT在固态下不发生叠氮-四唑互变异构反应. 根据IR光谱计算了DAT的热容、焓、熵等热力学参数, 也给出了这些参数和温度T之间的函数关系. 在不破坏四嗪环和叠氮基的原则下通过构建等键反应求得了DAT的精确生成热为1088 kJ•mol—1. 爆轰性能计算表明DAT爆速D=8.45 km•s-1, 爆压P=31.3 GPa, 高于TNT和HMX.  相似文献   

6.
以3,6-对(3,5-二甲基吡唑)-1,2,4,5-四嗪(BT)为起始物,经亲核取代、氧化脱氢、氨解和水解等四步反应,合成了高氮含能化合物3,3'-偶氮-(6-氨基-1,2,4,5-四嗪)(DAAT).对DAAT的热分解性能进行了研究,由DSC、PDSC和TG-DTG技术获得了DAAT的热分解动力学参数和机理函数.结果表明,DAAT的热稳定性好,能量高.在5℃/min升温速率下,DAAT在283℃左右开始分解,放热峰值320℃,分解放热峰的分解焓为1974.33J/g,高于相同条件下硝胺系炸药HMX的分解焓;采用Kissinger法和Ozawa法求得其活化能分别为209.69和208.77kJ/mol;其热分解速率对压强比较敏感,且与环境压强成正比.采用VLW EOS对DAAT的爆轰性能进行了理论计算,结果表明将DAAT与传统含能材料混合,有望制备出高能钝感炸药.  相似文献   

7.
3,3′-偶氮-(6-氨基-1,2,4,5-四嗪)的合成与表征   总被引:1,自引:0,他引:1  
以硝酸胍和水合肼为原料,经7步反应合成了高氮含能化合物3,3′-偶氮-(6-氨基-1,2,4,5-四嗪),其结构经1H NMR,13C NMR,IR及元素分析表征。  相似文献   

8.
3,3-二(二氟氨基)-1,5-二硝酸酯基戊烷是一种高能低玻璃化转变温度的含能增塑剂.为了获得更多此类结构的新型二氟氨基含能化合物,设计了一系列3,3-二(二氟氨基)-1,5-取代戊烷衍生物作为新型含能增塑剂的候选品种.采用泛函密度理论(DFT)法研究了生成热、电子结构、能量特性和热稳定性.二氟氨基基团能增加标题化合物之间电子结构、密度和爆轰性质的能隙.特别是1,3,3,5-四(二氟氨基)戊烷(S3)具有作为潜在含能增塑剂的显著价值.其晶体密度(1.91g/cm3)、爆速(9.01 km/s)、爆压(37.31 GPa)和冲击灵敏度(h_(50) 29.83 cm)均与奥克托今(HMX)非常接近.此外, S_3可以通过一些成熟的过程5步合成得到.  相似文献   

9.
自行设计了3,3’-偶氮双(6-氨基-1,2,4,5-四嗪)(DAAT)新合成路线、采用3,5-双(3,5-二甲基吡唑-1-基)-1,2,4,5-四嗪(BDT)为原料, 由文献报道的4步反应缩减为2步, 经高压氨解、高锰酸钾氧化合成了DAAT, 总收率大幅提高, 达到58.1%, 并采用元素分析、红外光谱、核磁共振光谱等进行了结构表征. 为了从分子水平探索DAAT的性能, 采用B3LYP法, 在6-31G(d,p)基组水平上对DAAT的结构进行了优化, 计算了其性能, 获得稳定的几何构型、分子轨道及键级; 在振动分析的基础上求得体系的振动频率、IR谱及不同温度下的热力学性质, 并得温度对热力学性能影响的关系式. 结果表明: DAAT分子结构中偶氮基两侧的四嗪环和氨基基本在同一个平面上, 形成一个大的共轭π键; 红外谱计算频率和强度与实验结果整体吻合较好; 热能( )、热容( )和熵( )均随温度的升高而增大.  相似文献   

10.
饶国武  胡惟孝 《有机化学》2004,24(12):1622-1625
氯甲酸乙酯和3,6-二苯基-1,2-二氢-1,2,4,5-四嗪反应生成的是标题化合物3,6-二苯基-1,2-二氢-1,2,4,5-四嗪-1,2-二甲酸乙酯,而不是预期的3,6-二苯基-1,4-二氢-1,2,4,5-四嗪-1,4-二甲酸乙酯,其结构通过X射线单晶结构分析得以证实.此晶体属三斜晶系,P-1空间群,晶胞参数分别为:a=0.8915(2)nm,b=1.0444(2)nm,c=1.1509(3)nm,α=103.268(3)°,β=102.844(3)°,y=100.765(3)°,Z=2,R1=0.0593和wR2=0.1691.结果表明该化合物中心六元环的2,3-二氮杂丁二烯基团不共平面,没有很好地共轭.且该化合物中心六元环呈扭式构象,N(1)和N(2)原子分别偏离环平面-0.03611(41)和0.02944(40)nm.  相似文献   

11.
Density functional theory has been used to investigate geometries, heats of formation (HOFs), C-NO2 bond dissociation energies (BDEs), and relative energetic properties of nitro derivatives of azole substituted furan. HOFs for a series of molecules were calculated by using density functional theory (DFT) and Møller–Plesset (MP2) methods. The density is predicted using crystal packing calculations; all the designed compounds show density above 1.71 g/cm3. The calculated detonation velocities and detonation pressures indicate that the nitro group is very helpful for enhancing the detonation performance for the designed compounds. Thermal stabilities have been evaluated from the bond dissociation energies. Charge on the nitro group was used to assess the impact sensitivity in this study. According to the results of the calculations, tri- and tetra-nitro substituted derivatives reveal high performance with better thermal stability.  相似文献   

12.
Density functional theory method was used to study the heats of formation (HOFs), electronic structure, energetic properties, and thermal stability for a series of 1,2,3,4-tetrazine-1,3-dioxide derivatives with different substituents and bridge groups. It is found that the groups –NO2, –C(NO2)3, and –N=N– play a very important role in increasing the HOFs of the derivatives. The effects of the substituents on the highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) energy levels and HOMO–LUMO gaps are coupled to those of different substituents and bridges. The calculated detonation velocities and pressures indicate that the group –NO2, –NF2, –ONO2, –C(NO2)3, or –NH– is an effective structural unit for enhancing the detonation performance for the derivatives. An analysis of the bond dissociation energies for several relatively weak bonds indicates that incorporating the groups –NO2, –NF2, –ONO2, –C(NO2)3, and –N=N– into parent ring decreases their thermal stability. Considering the detonation performance and thermal stability, 18 compounds may be considered as the target compounds holding the greatest potential for synthesis and use as high-energy density compounds. Among them, the oxygen balances of four compounds are equal to zero. These results provide basic information for the molecular design of the novel high-energy compounds.  相似文献   

13.
Density functional theory method was used to study the heats of formation (HOFs), electronic structure, energetic properties, and thermal stability for a series of bridged ditetrazole derivatives with different linkages and substituent groups. The results show that the ? N3 group and azo bridge (? N?N? ) play a very important role in increasing the HOF values of the ditetrazole derivatives. The effects of the substituents on the HOMO–LUMO gap are combined with those of the bridge groups. The calculated detonation velocities and detonation pressures indicate that the ? NO2, ? NF2, ? N?N? , or ? N(O)?N? group is an effective structural unit for enhancing the detonation performance for the derivatives. An analysis of the bond dissociation energies for several relatively weak bonds suggests that the N? N bond in the ring or outside the ring is the weakest one and the N? N cleavage is possible to happen in thermal decomposition. Overall, the ? CH2? CH2? or ? NH? NH? group is an effective bridge for enhancing the thermal stability of the bridged ditetrazoles. Because of their desirable detonation performance and thermal stability, five compounds may be considered as the potential candidates of high‐energy density materials (HEDMs). These results provide basic information for the molecular design of novel HEDMs. © 2011 Wiley Periodicals, Inc. J Comput Chem, 2011  相似文献   

14.
Density functional theory calculations were performed to find comprehensive relationships between the structures and performance of a series of highly energetic cyclic nitramines. The isodesmic reaction method was employed to estimate the heat of formation. The detonation properties were evaluated by using the Kamlet-Jacobs equations based on the theoretical densities and HOFs. Results indicate the N-NO(2) group and aza N atom are effective substituents for enhancing the detonation performance. All cyclic nitramines except C11 and C21 exhibit better detonation performance than HMX. The decomposition mechanism and thermal stability of these cyclic nitramines were analyzed via the bond dissociation energies. For most of these nitramines, the homolysis of N-NO(2) is the initial step in the thermolysis, and the species with the bridged N-N bond are more sensitive than others. Considering the detonation performance and thermal stability, twelve derivatives may be the promising candidates of high energy density materials (HEDMs). The results of this study may provide basic information for the further study of this kind of compounds and molecular design of novel HEDMs.  相似文献   

15.
Density functional theory calculations were performed to find the relationships between the structures and performance of a series of 1,2,4,5-tetrazine-based energetic derivatives. The isodesmic reaction method was employed to estimate the heats of formation (HOFs). The result shows that the azo or azoxy group is one of the most energetic functional groups known and its substitution can drastically increase HOFs of a molecule. The detonation properties were also evaluated by the Kamlet–Jacobs equations based on the theoretical densities and HOFs. Results show that NO2 group is an effective substituent for enhancing the detonation performance. There exist better correlations between OB and detonation velocities and OB and detonation pressures. The energy gaps between the HOMO and LUMO of the studied compounds are also investigated, and from the data we estimated the relative thermal stability ordering of the title compounds.  相似文献   

16.
Density functional theory (DFT) method has been employed to study the geometric and electronic structures of a series of four-membered ring compounds at the B3LYP/6-311G** and the B3P86/6-311G** levels. In the isodesmic reactions designed for the computation of heats of formation (HOFs), 3,3-dimethyl-oxetane, azetidine, and cyclobutane were chosen as reference compounds. The HOFs for N(3) substituted derivations are larger than those of oxetane compounds with --ONO2 and/or --NF2 substituent groups. The HOFs for oxetane with --ONO2 and/or --NF2 substituent groups are negative, while the HOFs for N3 substituted derivations are positive. For azetidine compounds, the substituent groups within the azetidine ring affect the HOFs, which increase as the difluoroamino group being replaced by the nitro group. The magnitudes of intramolecular group interactions were predicted through the disproportionation energies. The strain energy (SE) for the title compounds has been calculated using homodesmotic reactions. For azetidine compounds, the NF2 group connecting N atom in the ring decrease the SE of title compounds. Thermal stability were evaluated via bond dissociation energies (BDE) at the UB3LYP/6-311G** level. For the oxetane compounds, the O--NO2 bond is easier to break than that of the ring C--C bond. For the azetidine and cyclobutane compounds, the homolyses of C--NX2 and/or N--NX2 (X = O, F) bonds are primary step for bond dissociation. Detonation properties of the title compounds were evaluated by using the Kamlet-Jacobs equation based on the calculated densities and HOFs. It is found that 1,1-dinitro-3,3-bis(difluoroamino)-cyclobutane, with predicted density of ca. 1.9 g/cm(3), detonation velocity (D) over 9 km/s, and detonation pressure (P) of 41 GPa that are lager than those of TNAZ, is expected to be a novel candidate of high energy density materials (HEDMs). The detonation data of nitro-BDFAA and TNCB are also close to the requirements for HEDMs.  相似文献   

17.
The heats of formation (HOFs) for a series of monofurazan derivatives were calculated by using density functional theory. It is found that the ? CN or ? N3 group plays a very important role in increasing the HOF values of the furazan derivatives. The detonation velocities and detonation pressures of the furazan derivatives are evaluated at two different levels. The results show that the ? NF2 group is very helpful for enhancing the detonation performance for the furazan derivatives, but the case is quite the contrary for the ? CH3 group. An analysis of the bond dissociation energies and bond orders for the weakest bonds indicate that the substitutions of ? CN group are favorable and enhances the thermal stability of the furazan derivatives, but the ? NO2 groups produce opposite effects. These results provide basic information for the molecular design of novel high‐energy density materials. © 2009 Wiley Periodicals, Inc. Int J Quantum Chem, 2010  相似文献   

18.
The series of nitro-triaziridines had been studied as high-energy density compounds at B3LYP/6-311G** and MP2/6-311G** levels by means of density functional theory. The heats of formation (HOFs), bond dissociation energies, and detonation performance had been calculated in detail. It was found that all nitro-triaziridines have high position HOFs, and electron-withdrawing of nitro, the steric hindrance, and abundant N–N bond had positive effect with increasing values of HOFs. The thermodynamic stability is estimated by bond dissociation energy and available free space per molecule in unit cell. The detonation performance had been estimated via Kamlet–Jacobs equation and relative specific, However, two different consequences were obtained for detonation performance. Hence, for nitro-triaziridines derivatives, we assumed that a large number of extra oxygen was produced in combustion reaction or explosive reaction, which was negative for the energy released. Therefore, the oxygen balance must be considered for designing high-energy compounds. We also assumed that the Kamlet–Jacobs equation may not be applicable for the compounds, which was constituted of only oxygen, hydrogen, and nitrogen elements.  相似文献   

19.
Density functional theory calculations were performed to study the effects of different substituents and nitrogen-containing heterocyclic rings on the heats of formation (HOFs), energetic properties, and thermal stability for a series of furoxan derivatives. The isodesmic reaction method was employed to calculate the HOFs of the derivatives using total energies obtained from electronic structure calculations. The detonation velocities and pressures were evaluated by using the semiempirical Kamlet–Jacobs equations, based on the theoretical densities and HOFs. The bond dissociation energies and bond orders for the weakest bonds were analyzed to investigate the thermal stability of the furoxan derivatives. These results provide basic information for the molecular design of novel high energy density materials.  相似文献   

20.
Density functional theory method was used to study the heats of formation (HOFs), electronic structure, energetic properties, and pyrolysis mechanism of a series of trinitromethyl-substituted heterocycle (including triazole, tetrazole, furazan, tetrazine, and fused heterocycles) derivatives. It is found that the fused ring, tetrazine, and tetrazole are effective structural units for increasing the HOFs of the derivatives. The substitution of the combination of nitro and trinitromethyl is very useful for improving their HOFs. The calculated energetic properties indicate that the combination of the nitro and trinitromethyl is very helpful for improving their detonation properties and oxygen balances (OB). Most of the title compounds have a good OB over zero. The OB of six compounds are very high and over 22. An analysis of the bond dissociation energies for several relatively weak bonds suggests that the N–O bond in the ring is a trigger bond for BIII-1, CI-3, and CI-4, and the ring–NO2 and (NO2)2C–NO2 bond cleavage is likely to happen in thermal decomposition for the remaining compounds. Considering the detonation performance and thermal stability, seven compounds could be regarded as potential candidates for high-energy compounds. Four compounds may be used as the novel high-energy oxidizers.  相似文献   

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