Does the Oxygen Functionality Really Improve the Thermodynamics of Reversible Hydrogen Storage with Liquid Organic Hydrogen Carriers?

Oxygen Pub Date : 2024-07-02 DOI:10.3390/oxygen4030015
S. P. Verevkin, A. Samarov, Sergey V. Vostrikov
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Abstract

Liquid organic hydrogen carriers (LOHCs) are aromatic molecules that are being considered for the safe storage and release of hydrogen. The thermodynamic properties of a range of aromatic ethers were investigated using various experimental and theoretical methods to assess their suitability as LOHC materials. The absolute vapour pressures were measured for benzyl phenyl ether, dibenzyl ether and 2-methoxynaphthalene using the transpiration method. The standard molar enthalpies and entropies of vaporisation/sublimation were derived from the temperature dependence of the vapour pressures. The combustion energies of benzyl phenyl ether and dibenzyl ether were measured using high-precision combustion calorimetry, and their standard molar enthalpies of formation were derived from these data. High-level quantum chemical calculations were used to calculate the standard molar enthalpies of formation in the gas phase for benzyl phenyl ether, dibenzyl ether and 2-methoxynaphthalene. The latter values agreed very well with the experimental results obtained in this work. The thermodynamic properties of the hydrogenation/dehydrogenation reactions in liquid phase in LOHC systems based on methoxy–benzene, diphenyl ether, benzyl phenyl ether, dibenzyl ether and 2-methoxynaphthalene were derived and compared with the data for similarly structured hydrogen carriers based on benzene, diphenylmethane, 1,2-diphenylethane, 1,3-diphenylpropane and naphthalene. The influence of the oxygen functionality on the thermodynamic properties of the hydrogenation/dehydrogenation reactions was evaluated.
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氧气功能是否真的能改善液态有机载氢体可逆储氢的热力学?
液态有机氢载体(LOHC)是一种芳香族分子,目前正被考虑用于氢的安全储存和释放。我们使用各种实验和理论方法研究了一系列芳香族醚的热力学特性,以评估它们是否适合用作液态有机氢载体材料。采用蒸腾法测量了苄基苯基醚、二苄基醚和 2-甲氧基萘的绝对蒸气压。根据蒸气压的温度依赖性得出了汽化/升华的标准摩尔焓和熵。使用高精度燃烧量热计测量了苄基苯基醚和二苄基醚的燃烧能量,并根据这些数据得出了它们的标准摩尔形成焓。高水平量子化学计算用于计算苄基苯基醚、二苄基醚和 2-甲氧基萘在气相中的标准摩尔形成焓。后者的数值与本研究获得的实验结果非常吻合。得出了以甲氧基苯、二苯醚、苄基苯基醚、二苄基醚和 2-甲氧基萘为基础的 LOHC 系统在液相中加氢/脱氢反应的热力学性质,并与以苯、二苯基甲烷、1,2-二苯基乙烷、1,3-二苯基丙烷和萘为基础的类似结构氢载体的数据进行了比较。评估了氧官能团对氢化/脱氢反应热力学性质的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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