Institute for Solid State Physics , The University of Tokyo , 5-1-5 Kashiwanoha , Kashiwa , Chiba 277-8581 , Japan.
Office of Society-Academia Collaboration for Innovation , Kyoto University , Gokasho, Uji Kyoto 611-0011 , Japan.
ACS Appl Mater Interfaces. 2020 Jan 8;12(1):428-435. doi: 10.1021/acsami.9b13978. Epub 2019 Dec 27.
Fluoride-shuttle batteries (FSBs), which are based on fluoride-ion transfer, have attracted attention because of their high theoretical energy densities. The fluorination and defluorination reactions at the electrodes are the possible rate-determining steps in FSBs, and understanding the mechanism is important to achieve smooth charge/discharge. In this study, we discuss the thermodynamically favored pathways for the fluorination and defluorination reactions and compare the reactions through the solid-solution and two-phase-coexistent states by density functional theory (DFT) calculations. The free energies of the solid-solution and two-phase states approximate the energies calculated by DFT, and their accuracy was validated by comparison with experimental formation enthalpies and free energies. The relative formation enthalpies of typical, transition, and relativistic metal (Tl, Pb, and Bi) fluorides are well reproduced by DFT calculations within 0.1, 0.2, and 0.4 eV, respectively. We also show that the reaction pathway can be determined by comparing the formation enthalpies of the metal fluoride , a fluorine vacancy , and an interstitial fluorine defect from the simple selection rule. The enthalpy relation of > > - observed in all the calculations strongly suggests that fluorination and defluorination in FSB electrodes occur by a two-phase reaction. This fluorination and defluorination mechanism will be useful to clarify the rate-determining step in FSBs.
氟化物穿梭电池(FSB)基于氟离子转移,因其具有高理论能量密度而受到关注。电极处的氟化和脱氟化反应是 FSB 中可能的速率决定步骤,了解其机制对于实现顺畅的充放电至关重要。在这项研究中,我们通过密度泛函理论(DFT)计算讨论了氟化和脱氟化反应的热力学有利途径,并比较了通过固溶体和两相共存状态的反应。固溶体和两相状态的自由能近似于 DFT 计算的能量,通过与实验形成焓和自由能的比较验证了其准确性。典型的过渡和相对论金属(Tl、Pb 和 Bi)氟化物的相对形成焓通过 DFT 计算在 0.1、0.2 和 0.4 eV 范围内得到很好的重现。我们还表明,可以通过比较金属氟化物 、氟空位 和间隙氟缺陷 的形成焓,从简单的选择规则来确定反应途径。在所有计算中观察到的 > > -焓关系强烈表明,FSB 电极中的氟化和脱氟化反应通过两相反应发生。这种氟化和脱氟化机制将有助于阐明 FSB 中的速率决定步骤。