首页> 外文期刊>Zeitschrift fur Physikalische Chemie: International Journal of Research in Physical Chemistry and Chemical Physics >Quantum Chemical and Electrochemical Evaluation of Alkyl Phosphine Oxide in Corrosion Inhibition of Carbon Steel in Formation Water
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Quantum Chemical and Electrochemical Evaluation of Alkyl Phosphine Oxide in Corrosion Inhibition of Carbon Steel in Formation Water

机译:烷基氧化膦氧化碳氧化铝腐蚀抑制中碳钢中碳钢中的量子化学和电化学评价

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摘要

In this study, quantum chemical calculations and molecular dynamics simulations studies of a series of five nonionic surfactants namely: dimethyl alkyl phosphine oxide surfactants (C10-18PO) containing decyl, dodecyl-, tetradecyl-, hexadecyl-, and octadecyl alkyl chains were implemented using the density functional theory (DFT) method to interpret the correlation between the inhibition efficiency and the molecular structure of the different inhibitors in formation water. The global quantities including: highest occupied molecular orbital energy (HOMO), lowest unoccupied molecular orbital energy (LUMO), energy gap (ΔE), dipole moment (μ), total energy (TE), ionization potential (I), electron affinity (A), electronegativity (χ), chemical potential (π), global hardness (η), global softness (σ), global electrophilicity (ω), polarizabilities <α> and fraction of electrons transferred (ΔN) were calculated for the different inhibitors in formation water. The dependence of surface activities of the nonionic surfactants on the alkyl chain length was studied in distilled water. The surface activities and surface parameters of the studied surfactants were described using: surface tension and interfacial tension measurements. The determined surface parameters of the studied surfactants were surface tension, critical micelle concentration, effectiveness, efficiency, maximum surface excess and minimum surface area at 25 °C. The thermodynamic evaluation of the surfactants was performed by calculating the standard free energies of micellization and adsorption. The structure-corrosion inhibition performance was estimated using potentiodynamic polarization, electrochemical impedance measurements and quantum chemical studies at 25 °C in true sample formation water.
机译:在该研究中,量子化学计算和分子动力学模拟一系列五种非离子表面活性剂的研究:使用含有癸基,十二烷基 - ,十四烯基,十六烷基和十八烷基烷基链的二甲基烷基膦氧化膦表面活性剂(C10-18PO)密度泛函理论(DFT)方法解释形成水中不同抑制剂的抑制效率与分子结构的相关性。全局量包括:最高占用的分子轨道能量(HOMO),最低未占用的分子轨道能量(LUMO),能隙(ΔE),偶极矩(μ),总能量(TE),电离电位(I),电子亲和力( a)为不同的抑制剂计算电负性(χ),化学电位(π),全局硬度(η),全局柔软度(σ),全局柔软度(σ),偏光性<α>和电子转移的差异(Δn)在地层水中。在蒸馏水中研究了非离子表面活性剂对烷基链长度的表面活性的依赖性。使用:表面张力和界面张力测量来描述研究的表面活性剂的表面活性和表面参数。所确定的表面活性剂的表面参数是表面张力,临界胶束浓度,有效性,效率,最大表面过量和最小表面积在25℃。通过计算胶束化和吸附的标准能量来进行表面活性剂的热力学评价。在真正的样品形成水中使用电量极化,电化学阻抗测量和量子化学研究估计结构腐蚀性抑制性能。

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