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The Bonding Nature and Adhesion of Li and Polyacrylic Acid (PAA) Coating for Li Dendrite Prevention

机译:Li和聚丙烯酸(PAA)涂层对Li Dendrite预防的粘接性质及粘附性

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Vehicle electrification requires lithium ion batteries (LIB) with higher energy density to make possible the extended driving range at a lower cost. One promising approach is to adopt the lithium metal as the anode due to its ultrahigh capacity and lowest reduction potential; however, Li dendrite growth is an inevitable bottleneck that can lead to capacity loss and short circuit. It is recently shown that Li polyacrylic acid (Li-PAA) polymer as a passivation layer can exhibit high elasticity, high binding, and excellent stability to mitigate the Li dendrite growth during Li plating/stripping processes. However, the experimental limitation to the measurement of the interfacial adhesion of the interface of Li metal and PAA polymer, Li/PAA(polymer), and other polymer-based passivation layers has retarded the coating design. The uncertainty of the PAA structures (crystalline, semicrystalline, or amorphous) due to varied polymer preparation techniques and post-preparation conditions also limits direct calculation of the work of adhesion/separation using density functional theory (DFT) calculations. In this work, from atomistic understandings of the bonding nature at the Li/PAA interface, we have proposed a strategy to quantify the interfacial adhesion (work of separation) of the Li/PAA(polymer) based on simpler Li/PAA(oligomer) interfaces using DFT calculations. A total of fifteen interfaces of Li/PAA(tetramers), Li/PAA(hexamers), and Li/PAA(nanomers) were studied. It was found that the delamination of Li/PAA(oligomer) interfaces is affected by: a) the O atoms in PAA bonding with multiple surface Li atoms, b) the chemical reactions, including H incorporation into the Li substrate and surface LiOH from COOH reacting with Li surface, leading to the enhanced ionic Li-0 bonding, and c) the interactions of ionized Li (incorporated into the PAA oligomers) with the surrounding metallic Li atoms on the surface. The characteristic interfacial bonding energy is then obtained based on the most likely delamination configuration and by fitting the corresponding work of separation using two approaches: as a function of the number of bonding O and as a function of the number of LiO bonds and ionized Li atoms. The areal density associated with the interfacial bonding is obtained from the practical PAA density and statics of the DFT results as well. The interfacial adhesion of Li/PAA(polymer) is quantified to be 0.97 J/m~2, and is found to be comparable to that of Li/Li_2O interface and much larger than Li/LiF and Li/Li_2CO_3 interfaces. We attribute the high interface adhesion of Li/PAA(polymer) to the high density of open O atoms of PAA, allowing more Li-O bonds across the Li/PAA interface. This study provides a strategy to estimate the adhesion of artificial polymer-based passivation layers on Li metal, which is expected to contribute to the development of polymer-based coatings for the Li dendrite growth mitigation in LIBs.
机译:车辆电气化需要具有更高能量密度的锂离子电池(Lib),以使延长的驱动范围以较低的成本。一种有希望的方法是由于其超高容量和最低减少潜力,采用锂金属作为阳极;然而,Li Dendrite生长是一种不可避免的瓶颈,可以导致能力损失和短路。最近表明,Li聚丙烯酸(Li-Paa)聚合物作为钝化层可以表现出高弹性,高结合和优异的稳定性,以减轻Li镀/汽提工艺期间的Li Dendrite生长。然而,对Li / Paa聚合物界面,Li / Paa(聚合物)和其他基于聚合物基钝化层的界面的测量的实验限制已经延迟了涂层设计。 PAA结构(结晶,半结晶或无定形)的不确定度由于变化的聚合物制备技术和后制备条件也限制了使用密度函数理论(DFT)计算的粘附/分离工作的直接计算。在这项工作中,从LI / PAA界面的粘合性质的原子理解,我们提出了一种基于更简单的Li / Paa(低聚物)来量化Li / Paa(聚合物)的界面粘附(分离工作)的策略使用DFT计算的接口。研究了Li / Paa(四聚体),Li / Paa(六烷烃)和Li / Paa(纳米)的十五个晶体。结果发现,Li / Paa(低聚物)界面的分层受以下的影响:a)与多个表面Li原子,b)的Paa键合中的O原子,其中化学反应,包括H掺入Li底物和来自COOH的表面LiOH与锂表面反应,导致增强的离子Li-0键合,C)将电离Li(掺入PAA低聚物中)的相互作用与表面上的周围金属锂原子。然后基于最可能的分层配置获得特征界面粘合能量,并使用两种方法拟合相应的分离工作:作为键合O的数量和作为LiO键数和电离的Li原子的函数的函数。与界面键合相关的面密度是从实际PAA密度和DFT结果的静态的估计中获得的。 Li / Paa(聚合物)的界面粘附量定量为0.97J / m〜2,发现与Li / Li_2O界面的界面相当,大于Li / LiF和Li / Li_2CO_3接口。我们将Li / Paa(聚合物)的高界面粘附性归因于PAA的开放O原子的高密度,允许穿过LI / PAA界面的更多Li-O键。本研究提供了一种估算人造聚合物基钝化层对Li金属上的粘附的策略,这预期有助于Li Bibs中Li Dendrite生长缓解的聚合物基涂层的发育。

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