Aouaini Fatma, Bouazizi Nadia, Almoneef Maha M, Al-Ghamdi Hanan, Ben Lamine Abdelmottaleb
Department of Physics, College of Science, Princess Nourah Bint Abdulrahman University Riyadh Saudi Arabia
Laboratory of Quantum and Statistical Physics, LR18ES18, Monastir University, Faculty of Sciences of Monastir Tunisia.
RSC Adv. 2021 Apr 29;11(26):15905-15920. doi: 10.1039/d1ra00999k. eCollection 2021 Apr 26.
In this work, the absorption and desorption isotherms of hydrogen on TiCrMnFeRE (RE = La, Ce, Ho) metals were collected at three temperatures under the same experimental conditions. This was carried out in order to determine the rare earth effect on the hydrogen storage performance of the TiCrMnFe metal. The equilibrium data showing the hydrogen absorbed/released amounts per unit of absorbent mass have provided useful details to describe the absorption/desorption processes. Indeed, statistical physics formalism is appealing to ascribe advanced interpretations to the complexation mechanism. The physico-chemical parameters included in the model analytical expression are numerically determined from the experimental data fitting. We have found that the model can describe the complexation process through steric parameters such as the site densities ( and ), the numbers of atoms per site ( and ) and energetic parameters ( and ). The behavior of each parameter is examined in relation to the sorption mechanism. Overall, the energetic interpretation reveals that the desorption and absorption of H-gas in the TiCrMnFeRE alloys can be characterized by chemical interactions. In addition, the expression of the appropriate model is exploited to determine the thermodynamic potential functions that describe the absorption phenomenon.
在本研究中,在相同实验条件下于三个温度收集了氢气在TiCrMnFeRE(RE = La、Ce、Ho)金属上的吸附和解吸等温线。开展此项工作是为了确定稀土对TiCrMnFe金属储氢性能的影响。显示每单位吸附剂质量吸收/释放氢气量的平衡数据为描述吸附/解吸过程提供了有用的细节。实际上,统计物理形式主义有助于对络合机制进行深入解释。模型解析表达式中包含的物理化学参数通过实验数据拟合进行数值确定。我们发现该模型可以通过空间参数(如位点密度( 和 )、每个位点的原子数( 和 ))和能量参数( 和 )来描述络合过程。研究了每个参数与吸附机制相关的行为。总体而言,能量解释表明TiCrMnFeRE合金中氢气的解吸和吸附可以通过化学相互作用来表征。此外,利用合适模型的表达式来确定描述吸附现象的热力学势函数。