Warburton Robert E, Iddir Hakim, Curtiss Larry A, Greeley Jeffrey
School of Chemical Engineering, Purdue University , West Lafayette, Indiana 47907, United States.
Materials Science Division, Argonne National Laboratory , Argonne, Illinois 60439, United States.
ACS Appl Mater Interfaces. 2016 May 4;8(17):11108-21. doi: 10.1021/acsami.6b01069. Epub 2016 Apr 19.
Density functional theory calculations are performed within the generalized gradient approximation (GGA+U) to determine stable terminations of both low- and high-index spinel LiMn2O4 (LMO) surfaces. A grand canonical thermodynamic approach is employed, permitting a direct comparison of off-stoichiometric surfaces with previously reported stoichiometric surface terminations at various environmental conditions. Within this formalism, we have identified trends in the structure of the low-index surfaces as a function of the Li and O chemical potentials. The results suggest that, under a range of chemical potentials for which bulk LMO is stable, Li/O and Li-rich (111) surface terminations are favored, neither of which adopts an inverse spinel structure in the subsurface region. This thermodynamic analysis is extended to identify stable structures for certain high-index surfaces, including (311), (331), (511), and (531), which constitute simple models for steps or defects that may be present on real LMO particles. The low- and high-index results are combined to determine the relative stability of each surface facet under a range of environmental conditions. The relative surface energies are further employed to predict LMO particle shapes through a Wulff construction approach, which suggests that LMO particles will adopt either an octahedron or a truncated octahedron shape at conditions in which LMO is thermodynamically stable. These results are in agreement with the experimental observations of LMO particle shapes.
采用广义梯度近似(GGA+U)进行密度泛函理论计算,以确定低指数和高指数尖晶石型LiMn2O4(LMO)表面的稳定终止结构。采用巨正则热力学方法,可在各种环境条件下将非化学计量表面与先前报道的化学计量表面终止结构进行直接比较。在这种形式体系下,我们确定了低指数表面结构随Li和O化学势的变化趋势。结果表明,在体相LMO稳定的一系列化学势范围内,Li/O和富Li(111)表面终止结构更受青睐,这两种结构在次表面区域均未采用反尖晶石结构。该热力学分析扩展至确定某些高指数表面的稳定结构,包括(311)、(331)、(511)和(531),这些结构构成了真实LMO颗粒上可能存在的台阶或缺陷的简单模型。结合低指数和高指数结果,确定了在一系列环境条件下每个表面小面的相对稳定性。通过Wulff构造方法进一步利用相对表面能预测LMO颗粒形状,结果表明在LMO热力学稳定的条件下,LMO颗粒将呈现八面体或截顶八面体形状。这些结果与LMO颗粒形状的实验观察结果一致。