Loiudice Anna, Niau Bastien P G, Buonsanti Raffaella
Laboratory of Nanochemistry for Energy Research, Institute of Chemical Sciences and Engineering, Ecole Politechnique Fédérale de Lausanne, Sion CH-1950, Switzerland.
ACS Nanosci Au. 2022 Jan 20;2(3):233-238. doi: 10.1021/acsnanoscienceau.1c00049. eCollection 2022 Jun 15.
Ternary metal oxides are materials of interest for many applications, from batteries to catalysis. Their crystalline structure and composition determine their properties, and thus it is important to achieve control over these features. Here, we demonstrate that solid-state chemistry among nanocrystalline precursors is a promising approach for their synthesis. We show that the crystalline phase of nanocrystal precursors direct that of the ternary reaction product. The combination of X-ray and electron microscopy techniques reveals that the spinel and rhombohedral phases of copper iron oxide are obtained by reacting copper nanocrystals with spinel γ-FeO and corundum α-FeO nanocrystals, respectively. Considering the available library of nanocrystals with tunable crystal phases, this discovery opens up an alternative pathway toward the synthesis of a wide variety of ternary and quaternary materials, including those with metastable phases.
三元金属氧化物是一类在从电池到催化等众多应用中备受关注的材料。它们的晶体结构和组成决定了其性质,因此实现对这些特性的控制至关重要。在此,我们证明纳米晶前驱体之间的固态化学是一种很有前景的合成方法。我们表明,纳米晶前驱体的晶相决定了三元反应产物的晶相。X射线和电子显微镜技术的结合表明,通过分别使铜纳米晶体与尖晶石γ-FeO和刚玉α-FeO纳米晶体反应,可得到铜铁氧化物的尖晶石相和菱面体相。考虑到现有的具有可调节晶相的纳米晶体库,这一发现为合成包括亚稳相材料在内的各种三元和四元材料开辟了一条替代途径。