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High-Throughput Selection and Experimental Realization of Two New Ce-Based Nitride Perovskites:CeMoN3 and CeWN3

机译:CeMoN3和CeWN3两种新型铈基氮化物钙钛矿的高通量选择及实验实现

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Nitride perovskites have only been experimentally realized in very few cases despite the widespread existence and commercial importance of perovskite materials.From oxide perovskites used in ultrasonics to halide perovskites that have revolutionized the photovoltaics industry,the discovery of new perovskite materials has historically impacted a wide number of fields.Here,we add two new perovskites,CeWN3 and CeMoN3,to the list of experimentally realized perovskite nitrides using high-throughput computational screening and subsequent high-throughput thin film growth techniques.Candidate compositions are first down-selected using a tolerance factor and then thermochemical stability.A novel competing fluorite-family phase is identified for both material systems,which we hypothesize is a transient intermediate phase that crystallizes during the evolution from an amorphous material to a stable perovskite.Different processing routes to overcome the competing fluorite phase and obtain phase-pure nitride perovskites are demonstrated for the CeMoN_(3-x).and CeWN_(3-x)material systems,which provide a starting point for the development of future nitride perovskites.Additionally,we find that these new perovskite phases have interesting low-temperature magnetic behavior:CeMoN_(3-x).orders antiferromagnetically below TN ≈ 8 K with indications of strong magnetic frustration,while CeWN_(3-x)exhibits no long-range order down to T = 2 K but has strong antiferromagnetic correlations.This work demonstrates the importance and effectiveness of using high-throughput techniques,both computational and experimental:they are integral to optimize the process of realizing two entirely novel nitride perovskites.
机译:尽管钙钛矿材料广泛存在且具有商业重要性,但氮化物钙钛矿仅在极少数情况下通过实验实现。从用于超声波的氧化物钙钛矿到彻底改变光伏行业的卤化物钙钛矿,新型钙钛矿材料的发现在历史上影响了广泛的领域。在这里,我们增加了两种新的钙钛矿,CeWN3和CeMoN3,到使用高通量计算筛选和随后的高通量薄膜生长技术实验实现的钙钛矿氮化物列表中。首先使用公差因子下选候选成分,然后使用热化学稳定性。在两种材料体系中都发现了一种新的竞争萤石族相,我们假设它是在从非晶态材料演变为稳定钙钛矿的过程中结晶的瞬态中间相。针对CeMoN_(3-x)和CeWN_(3-x)材料体系,展示了克服萤石相竞争而获得相纯氮化物钙钛矿的不同加工路线,为未来氮化物钙钛矿的发展提供了起点。此外,我们发现这些新的钙钛矿相具有有趣的低温磁行为:CeMoN_(3-x).在TN≈8 K以下具有反铁磁性,具有强磁挫伤的迹象,而CeWN_(3-x)在T=2 K以下没有长程有序,但具有很强的反铁磁相关性。这项工作证明了使用高通量技术的重要性和有效性,包括计算和实验:它们是优化实现两种全新氮化物钙钛矿的过程不可或缺的一部分。

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