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Synthesis of BaZrS3 Perovskite Thin Films via Different Solid BaS x Intermediate Phases
Corrado Comparotto1, Younes Lablali2, Olivier Donzel-Gargand1
1Division of Solar Cell Technology, Department of Materials Science and Engineering, Uppsala University, Uppsala 75237, Sweden.
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The BaZrS3 perovskite has emerged as a promising compound for photovoltaic (PV) applications due to its unique optoelectronic properties, stability, and abundance of the constituent elements. Recent research has devoted considerable effort to decreasing the processing temperature to facilitate the integration of BaZrS3 thin films into optoelectronic devices. In this context, the formation of a barium polysulfide liquid flux as an intermediate phase is anticipated to promote BaZrS3 synthesis. This study investigates whether solid binaries can also accelerate the process at lower temperatures, i.e., below melting. To address this question, Ba-Zr precursors were sulfurized under various conditions that favor the formation of distinct solid BaS x intermediate phases during BaZrS3 synthesis, achieved by deliberately selecting processing temperatures below the melting points of any of the involved binary sulfides. The crystallinity of the resulting BaZrS3 thin films is evaluated by X-ray diffraction and transmission electron microscopy, revealing that the sulfurization conditions that favor solid BaS3 offer a greater advantage for BaZrS3 formation than those that promote BaS2, which in turn prove more favorable than those that favor BaS. Moreover, by varying sulfur partial pressure and sample temperature during sulfurization, this study disentangles the effects of these two parameters on BaZrS3 crystallization: the results indicate that the sulfurization conditions that favor BaS3 effectively promote BaZrS3 nucleation, while high temperatures predominantly enhance grain growth.

