氢氧化钴
氢氧化物
煅烧
钴
化学工程
材料科学
碳酸盐
无定形固体
层状结构
水溶液
催化作用
纳米晶
纳米颗粒
纳米结构
氢氧化锌
无机化学
纳米技术
化学
结晶学
锌
电化学
冶金
有机化学
物理化学
电极
工程类
作者
Anna S. Schenk,Miriam Goll,L.A. Reith,Manuel Roussel,Björn Blaschkowski,Sabine Rosenfeldt,Xiaofei Yin,Wolfgang W. Schmahl,Sabine Ludwigs
标识
DOI:10.1021/acs.cgd.0c00576
摘要
With their tendency to form low-dimensional materials with high surface area, cobalt hydroxide carbonates represent an important class of precursors to Co3O4—a heterogeneous catalyst with various applications including sustainable energy conversion. We here present a facile methodology for the room temperature precipitation of cobalt hydroxide carbonate under additive-free conditions. Upon aging in aqueous solution, the initially deposited amorphous bulk solid slowly transforms into macroscopic crystals with an unusual spherulitic morphology interfacially templated by glass surfaces. Most intriguingly, the individual branches of these hemispherical particles represent highly anisometric, elongated platelets reaching millimeter dimensions along the growth direction, while their lamellar architecture indicates the formation of a layered double hydroxide structure. Gradual substitution of Co(II) with Mn(II) results in the deposition of spheroidal stoichiometric carbonates with a calcite structure, in which the crystal lattice progressively expands with increasing Mn content. Replacement of Co(II) by Ni(II), in contrast, preserves the spherulite morphology at low Ni(II) content (Co/Ni > 1), but prevents precipitate maturation at higher proportions of Ni(II). Calcination converts the hydroxide carbonate precursor into hierarchical Co3O4 spherulites with superstructures composed of interconnected nanoparticles, where this nanoscale arrangement is shown to positively affect the electrocatalytic activity toward the oxygen evolution reaction.
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