Schwab Thomas, Aicher Korbinian, Zickler Gregor A, Reissner Michael, Diwald Oliver
Department of Chemistry and Physics of Materials, Paris-Lodron University Salzburg, Jakob-Haringer-Straße 2a, Salzburg, A-5020, Austria.
Institute of Solid State Physics, TU Wien, Wiedner Hauptstraße 8-10, Vienna, A-1040, Austria.
Small Methods. 2025 Jan;9(1):e2400715. doi: 10.1002/smtd.202400715. Epub 2024 Oct 29.
Configurations of composite metal oxide nanoparticles are typically far off their thermodynamic equilibrium state. As such they represent a versatile but so far overlooked source material for the intergranular solid-state chemistry inside ceramics. Here, it is demonstrated how the admixture of Fe and In ions to MgO nanoparticles, as achieved by flame spray pyrolysis, can be used to engage ion exsolution, phase separation, and subsequent spinel formation inside the network of diamagnetic and insulating MgO grains. Extremely high uniformity in the distribution of intergranular ferrimagnetic MgFeO films and grains with resulting magnetic coercivity values that depend on the nanoparticles' initial Fe concentration is achieved. Moreover, percolating networks of semiconducting MgInO are derived from MgO nanoparticles with admixtures of 20 at% In that gives rise to an enhancement of dc conductivity values by more than five orders of magnitude in comparison to the insulating MgO host. The here presented approach is general and applicable to the synthesis of a variety of functional spinel nanostructures embedded inside ceramic matrices. Nanoparticle loading with aliovalent impurity ions, the level of nanoparticle powder density after compaction, and sintering temperature are key parameters for this novel type of solid-state chemistry in between the host grains.
复合金属氧化物纳米颗粒的构型通常与其热力学平衡状态相差甚远。因此,它们代表了一种用途广泛但迄今为止被忽视的陶瓷内部晶间固态化学的原料。在此,展示了通过火焰喷雾热解将铁和铟离子掺入氧化镁纳米颗粒中,如何用于引发抗磁性和绝缘性氧化镁晶粒网络内的离子析出、相分离以及随后的尖晶石形成。实现了晶间亚铁磁性氧化镁铁氧体薄膜和晶粒分布的极高均匀性,其剩余矫顽力值取决于纳米颗粒的初始铁浓度。此外,通过在氧化镁纳米颗粒中掺入20原子百分比的铟,得到了半导体性氧化镁铟的渗流网络,与绝缘性氧化镁主体相比,其直流电导率值提高了五个多数量级。本文提出的方法具有通用性,适用于合成嵌入陶瓷基体中的各种功能性尖晶石纳米结构。向纳米颗粒中负载异价杂质离子、压实后纳米颗粒粉末密度的水平以及烧结温度是这种新型主体晶粒间固态化学的关键参数。