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Effect of boron substitution on hydrogen storage capacity of Li and Ti decorated naphthalene

机译:硼取代对Li和Ti修饰的萘的储氢能力的影响

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Interaction of molecular hydrogen with Li and Ti doped boron substituted naphthalene viz. C6B4H8Ti2 and C6B4H8Li2 has been studied using density functional theory (DFT) method. The C6B4H8Li2 complex can interact with maximum of four hydrogen molecules, whereas three H-2 molecules are adsorbed on C10H8Li2 complex. The C6B4H8Ti2 complex can interact with maximum of eight hydrogen molecules. The gravimetric hydrogen uptake capacity of C6B4H8Ti2 and C6B4H8Li2 complex is found to be 6.85 and 5.55 wt % respectively, which is higher than that of unsubstituted C10H8Ti2 and C10H8Li2 complexes. The boron substitution has significantly affected the hydrogen adsorption energies. The H-2 adsorption energy and Gibb's free energy corrected H2 adsorption energy are found to be more prominent after boron substitution. The C6B4H8Ti2 and C6B4H8Li2 complexes are more stable than the respective unsubstituted C10H8Ti2 and C10H8Li2 complexes due to their higher binding energies. According to the atom-centered density matrix propagation (ADMP) molecular dynamics simulations C6B4H8Li2 complex retain not a single adsorbed hydrogen molecule during the simulation at room temperature, whereas five hydrogen molecules at 300 K and eight at 100 K are remain absorbed on C6B4H8Ti2 complex. The C6B4H8Ti2 complex is found to be more promising material for hydrogen storage than C10B4H8Li2. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:分子氢与Li和Ti掺杂的硼取代的萘的相互作用,即。使用密度泛函理论(DFT)方法研究了C6B4H8Ti2和C6B4H8Li2。 C6B4H8Li2络合物最多可与四个氢分子相互作用,而三个H-2分子则吸附在C10H8Li2络合物上。 C6B4H8Ti2络合物最多可与八个氢分子相互作用。发现C6B4H8Ti2和C6B4H8Li2络合物的重量吸氢量分别为6.85和5.55 wt%,这高于未取代的C10H8Ti2和C10H8Li2络合物。硼取代显着影响了氢的吸附能。发现硼取代后,H-2吸附能和吉布的自由能校正的H2吸附能更加突出。 C6B4H8Ti2和C6B4H8Li2复合物比各自的未取代的C10H8Ti2和C10H8Li2复合物更稳定,因为它们具有更高的结合能。根据原子中心密度矩阵传播(ADMP)分子动力学模拟,C6B4H8Li2络合物在室温下的模拟过程中不会保留单个吸附的氢分子,而C6B4H8Ti2络合物上仍吸收了300 K的五个氢分子和100 K的八个氢分子。发现C6B4H8Ti2络合物比C10B4H8Li2是更有希望的储氢材料。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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