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Mechanistic Evaluation of LixOy Formation on delta-MnO2 in Nonaqueous Li-Air Batteries

机译:非水锂空气电池中δ-MnO2上LixOy形成的机理评估

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Transition metal oxides are usually used as catalysts in the air cathode of lithium-air (Li-air) batteries. This study elucidates the mechanistic origin of the oxygen reduction reaction catalyzed by delta-MnO2 monolayers and maps the conditions for Li2O2 growth using a combination of first principles calculations and mesoscale modeling. The MnO2 monolayer, in the absence of an applied potential, preferentially reacts with a Li atom instead of an O-2 molecule to initiate the formation of LiO2. The oxygen reduction products (LiO2, Li2O2, and Li2O molecules) strongly interact with the MnO2 monolayer via the stabilization of Li-O chemical bonds with lattice oxygen atoms. As compared to the disproportionation reaction, direct lithiation reactions are the primary contributors to the stabilization of Li2O2 on the MnO2 monolayer. The energy profiles of (Li2O2)(2) and (Li2O)(2) nucleation on delta-MnO2 monolayer during the discharge process demonstrate that Li2O2 is the predominant discharge product and that further reduction to Li2O is inhibited by the high overpotential of 1.21 V. Interface structures have been examined to study the interaction between the Li2O2 and MnO2 layers. This study demonstrates that a Li2O2 film can be homogeneously deposited onto delta-MnO2 and that the Li2O2/MnO2 interface acts as an electrical conductor. A mesoscale model, developed based on findings from the first-principles calculations, further shows that Li2O2 is the primary product of electrochemical reactions when the applied potential is smaller than 2.4 V.
机译:过渡金属氧化物通常在锂-空气(Li-air)电池的空气阴极中用作催化剂。这项研究阐明了δ-MnO2单层催化的氧还原反应的机理,并结合了第一性原理计算和中尺度模型,绘制了Li2O2生长的条件。在没有施加电势的情况下,MnO2单层优先与Li原子而不是O-2分子反应以引发LiO2的形成。氧还原产物(LiO2,Li2O2和Li2O分子)通过稳定具有晶格氧原子的Li-O化学键,与MnO2单层强烈相互作用。与歧化反应相比,直接锂化反应是在MnO2单层上稳定Li2O2的主要因素。放电过程中δ-MnO2单层上(Li2O2)(2)和(Li2O)(2)形核的能谱表明,Li2O2是主要的放电产物,并且1.21 V的高过电位抑制了进一步还原为Li2O已经研究了界面结构以研究Li 2 O 2和MnO 2层之间的相互作用。这项研究表明,可以将Li2O2薄膜均匀地沉积在δ-MnO2上,并且Li2O2 / MnO2界面可以作为电导体。基于第一性原理计算发现的中尺度模型进一步表明,当施加的电势小于2.4 V时,Li2O2是电化学反应的主要产物。

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