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1.
利用可加性规则,使用HartreeFock波函数,采用由束缚原子概念修正过的复光学势(由静 电势、交换势、修正极化势及吸收势这四部分组成),在较大的能量(30—5000eV)范围内对 电子被甲烷及氯代甲烷(CH4,CCl4,CHCl3,CH2Cl2和CH 3Cl)散射的总截面进行了计算,且将计算结果与实验结果及其他理论计算 结果进行 了比较.结果表明,利用被束缚原子概念修正过的复光学势及可加性规则进行计算,所得结 果的精度要比利用未被束缚原子概念修正的复光学势及可加性规则进行计算得到的结果好很 多.因此,在复光学势中采用束缚原子概念可提高电子被分子散射的总截面的计算准确度. 关键词: 电子散射 可加性规则 束缚原子 总截面  相似文献   

2.
利用可加性规则,使用Roothaan-Hartree-Fock波函数,采用由束缚原子概念修正过的复光学势,在300-1000 eV内若干个能量点处计算了电子被O2及CF4分子散射的微分截面、弹性积分截面及动量转移截面,并将计算结果与实验结果及其他理论计算结果进行了比较.比较的结果表明,利用被束缚原子概念修正过的复光学势及可加性规则进行计算,所得微分散射截面的精度要比利用未修正的复光学势及可加性规则进行计算得到的结果准确得多;同时,计算得到的弹性积分截面及动量转移截面也比较接近实验值.因此,在复光学势中采用束缚原子概念可提高电子被分子散射的微分截面、弹性积分截面及动量转移截面的计算准确度.  相似文献   

3.
利用可加性规则,使用Hartree-Fock波函数,采用由束缚原子概念修正过的复光学势(由静电势、极化势及吸收势三部分组成),在30—3000eV内对正电子被CO,HCl,NH3和SiH4散射的总截面进行了计算,且将计算结果与实验结果及其他理论计算结果进行了比较.结果表明,利用被束缚原子概念修正过的复光学势及可加性规则进行计算,所得结果与实验结果的符合程度要比利用未被束缚原子概念修正的复光学势及可加性规则进行计算得到的结果好很多.因此,在复光学势中采用束缚原子概念可提高正电子被分子散射的总截面的计算准确度. 关键词: 正电子散射 可加性规则 束缚原子 总截面  相似文献   

4.
利用可加性规则,使用Roothaan-Hartree-Fock波函数,采用由束缚原子概念修正过的复光 学势,在300—1000eV内若干个能量点处计算了电子被O2及CF4分子 散射的微分截面、 弹性积分截面及动量转移截面,并将计算结果与实验结果及其他理论计算结果进行了比较. 比较的结果表明,利用被束缚原子概念修正过的复光学势及可加性规则进行计算,所得微分 散射截面的精度要比利用未修正的复光学势及可加性规则进行计算得到的结果准确得多;同 时,计算得到的弹性积分截面及动量转移截面也比较接近实验值.因此,在复光学势中采用 束缚原子概念可提高电子被分子散射的微分截面、弹性积分截面及动量转移截面的计算准确 度. 关键词: 电子散射 可加性规则 微分截面 弹性积分截面  相似文献   

5.
利用可加性规则,使用Hartree-Fock波函数,采用由束缚原子概念修正过的复光学势(由静电势、极化势及吸收势三部分组成),在30-3000eV内对正电子被CO,HCl,NH3和SiH4散射的总截面进行了计算,且将计算结果与实验结果及其他理论计算结果进行了比较.结果表明,利用被束缚原子概念修正过的复光学势及可加性规则进行计算,所得结果与实验结果的符合程度要比利用未被束缚原子概念修正的复光学势及可加性规则进行计算得到的结果好很多.因此,在复光学势中采用束缚原子概念可提高正电子被分子散射的总截面的计算准确度.  相似文献   

6.
利用可加性规则,使用Hartree-Fock波函数,采用由束缚原子概念修正过的复光学势,在30~5000eV这一较大的能域内对电子被N2、NO、NO2、CH4、CF4、CF3H、C2H2及C2H4散射的总截面进行了计算。束缚原子不同于自由原子之处,是束缚原子概念考虑了不同分子中的不同的电子云重叠情况,并根据电子云的重叠情况对复光学势进行修正。文中,将定量的计算结果与实验结果及其它理论计算结果进行了比较,结果显示出在30~5000eV内,计算结果与实验结果及其它理论计算结果间有较好的一致性。同时结果也表明,在较低的能量下,尤其是当入射电子的能量低于500eV时,利用被束缚原子概念修正过的复光学势进行计算得到的结果,要比利用未被束缚原子概念修正的复光学势计算得到的结果更接近于实验值。因此,在复光学势中考虑电子云的重叠效应可改善电子被分子散射的总截面的计算精度。  相似文献   

7.
利用可加性规则,使用Roothaan-Hartree-Fock波函数,在100~5 000 eV下首次采用由束缚原子概念修正过的复光学势,对电子被等电子(Z=10)分子CH4、H2O、HF和NH3散射的总截面进行了计算.束缚原子不同于自由原子之处,是束缚原子考虑了在不同分子中电子云的不同重叠,将计算结果与实验及其它计算结果进行了比较.结果表明,利用被束缚原子概念修正过的复光学势及可加性规则进行计算,其结果的精度要比利用未被束缚原子概念修正过的复光学势及可加性规则进行计算得到的结果好.  相似文献   

8.
使用可加性规则,在Hartree-Fock水平上计算了30-3000eV的正电子被三个分子(O2、H2O及CH4)散射的总截面。计算正电子被三个分子散射的总截面时,首次使用了被束缚原子概念修正过的复光学势(这一复光学势考虑了分子中两个原子间的电子云重叠效应)。将正电子被这三个分子散射的总截面计算结果与实验结果及其它理论计算结果进行了比较,结果显示出在30-3000eV内,文中的计算结果与实验结果及其它理论计算结果具有较好的一致性。因此,可加性规则与修正后的复光学势相结合,完全适用于正电子被分子散射的总截面的计算。  相似文献   

9.
在考虑分子内成键原子间的电子云重叠效应的基础上,提出了一种能够在中、高能区准确计算“电子-分子”散射总截面的修正势方法.利用可加性规则及Hartree-Fock波函数,使用这一修正过的复光学势,在30—5000eV内对电子被4个等电子(Z=18)分子(HCl,H2S,PH3和SiH4)散射的总截面进行了计算,并将理论计算值与实验结果及其他理论值进行了比较.结果表明,利用这一修正过的复光学势及可加性规则进行计算,所得理论值与实验结果更为接近. 关键词: 电子散射 总截面 可加性规则 束缚原子  相似文献   

10.
利用可加性规则,使用Hartree-Fock波函数,在100~5 000 eV内采用由束缚原子概念修正过的复光学势,对电子被约40个分子散射的总截面进行了计算,并将计算结果与实验结果及其它理论计算结果进行了比较.得出如下结论①对大多数散射体系而言,仅当入射能量E≥100 eV时,计算结果即与实验结果符合得较好,少数较复杂的体系,当E≥200~300 eV时,也能与实验结果符合得较好.但采用未修正的复光学势进行计算,仅当E≥500~800 eV时才与实验结果符合得较好,不少体系只有在E≥1 000 eV时才能得到较好的结果.这说明本修正是成功的;②在较高的能量下,对于同类型分子构成的散射体系,在同一能量下其总截面与分子内的总电子数成正比,且电子数越多,其线性度也就越好;③在较高能量下总截面与能量间存在QT≈aE-b的关系.②与③相结合,可推算出一些复杂分子的总截面.  相似文献   

11.
A complex optical model potential rewritten by the concept of bonded atom, which considers the overlap of electron clouds, is employed to calculate the total cross sections for electron scattering from several simple molecules (O_2, H_2O, H_2, O_3, CO and CO_2) consisting of C, H and O atoms in an incident energy range of 100-2000eV by the use of the additivity rule at Hartree-Fock level. In the study, the complex optical potential composed of static, exchange, correlation polarization plus absorption contributions firstly uses the bonded-atom concept. The quantitative molecular total cross section results are compared with experimental data and with the other calculations wherever available and good agreement is obtained. It is shown that the additivity rule along with the complex optical model potential rewritten by the concept of bonded atom can be used successfully to calculate the total cross section of electron-molecule scattering above 100eV, whereas the rule together with the complex optical model potential not rewritten by the concept of bonded atom is only successfully used above 300-500eV. So, the introduction of the bonded-atom concept in the complex optical potential can improve the accuracy of the total cross section calculations.  相似文献   

12.
A model complex optical potential rewritten by the conception of bonded atom, which considers the overlapping effect of electron cloud, is employed to calculate the total (elastic + inelastic) cross sections with simple molecules (N2, O2, NO2, NO, N2O) consisting of N & O atoms over an incident energy range of 100 - 1600 eV by the use of additivity rule at Roothaan-Hartree-Fock level. In the study, the complex optical potential composed of static, exchange, correlation polarization plus absorption contributions firstly uses bonded-atom conception. The qualitative results are compared with experimental data and other calculations wherever available and good agreement is obtained. The total cross sections of electron-molecule scattering above 100 eV can be successfully calculated.  相似文献   

13.
A complex optical model potential modified by incorporating the concept of bonded atom, which takes into consideration the overlapping effect of electron clouds between two atoms in a molecule, is first employed to calculate the total cross sections for electrons scattering from such complex molecules as C总交叉断面 电子散射 添加规则 原子分子碰撞 电子云total cross section, electrons scattering, additivity rule, atomic and molecular collisionProject supported by the National Natural Science Foundation of China (Grant No 10574039).2005-11-102005-11-102005-11-30A complex optical model potential modified by incorporating the concept of bonded atom, which takes into consideration the overlapping effect of electron clouds between two atoms in a molecule, is first employed to calculate the total cross sections for electrons scattering from such complex molecules as C2H6, C2F6, C6H6 and C6F6 using the aclditivity rule model at Hartree-Fock level over the energy range from 100 eV to 5000 eV. The total cross sections are quantitatively compared with those obtained by experiments wherever available, and they are in good agreement with each other over a wide energy range. It is shown that the modified potential together with the additivity rule model is completely suitable for the calculation of total cross sections of electrons scattering from such complex molecules as C2H6, C2F6, C6H6 and C6F6 above 200 eV-300 eV.  相似文献   

14.
A complex optical model potential modified by incorporating the concept of bonded atom, with the overlapping effect of electron clouds between two atoms in a molecule taken into consideration, is firstly employed to calculate the differential cross sections, elastic integral cross sections, and moment transfer cross sections for electron scattering from molecular nitrogen over the energy range 300—1000eV by using additivity rule model at Hartree—Fock level. The bonded-atom concept is used in the study of the complex optical model potential composed of static, exchange, correlation polarization and absorption contributions. The calculated quantitative molecular differential cross sections, elastic integral cross sections, and moment transfer cross sections are compared with the experimental and theoretical ones wherever available, and they are found to be in good agreement with each other. It is shown that the additivity rule model together with the complex optical model potential modified by incorporating the concept of bonded atom is completely suitable for the calculations of differential cross section, elastic integral cross section and moment transfer cross section over the intermediate- and high-energy ranges.  相似文献   

15.
A complex optical model potential modified by the concept of bonded atom, which takes into consideration the overlapping effect of electron clouds between two atoms in a molecule, is employed to calculate the total cross sections (TCSs) for electrons scattering from several molecules (CF4, CCl4, CFCl3, CF2 Cl2, and CF3 Cl) over an incident energy range 30 ~ 5000 eV using the additivity rule model at Hartree-Fock level. The quantitative TCSs are compared with those obtained by experiments and other theories wherever available, and good agreement is obtained above 100 eV.It is shown that the modified potential can successfully calculate the TCSs of electron-molecule scattering over a wide energy range, especially at lower energies.  相似文献   

16.
A complex optical model potential modified by the concept of bonded atom, which takes into consideration the overlapping effect of electron clouds, is employed to calculate the total cross sections for electrons scattering from simple molecules (SO2, H2S, OCS, CS2 and SO3) containing the larger atom, sulfur, at 30-5000eV by using the additivity rule model at Hartree-Fock level. The quantitative molecular total cross section results are compared with those obtained in experiments and other calculations wherever available, and good agreement is obtained. It is shown that the additivity rule model together with the complex optical model potential modified by the concept of bonded atom can give the results closer to the experiments than the one unmodified by it. So, the introduction of bonded-atom concept in complex optical model potential betters the accuracy of the total cross section calculations of electrons from the molecules containing the larger atom, sulfur.  相似文献   

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