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High-Quality Perovskite Thin Films for NO Detection: Optimizing Pulsed Laser Deposition of Pure and Sr-Doped LaMO (M = Co, Fe)

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Publisher MDPI
Date 2025 Mar 13
PMID 40077404
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Abstract

This study investigates the structural and catalytic properties of pure and Sr-doped LaCoO and LaFeO thin films for potential use as resistive gas sensors. Thin films were deposited via pulsed laser deposition (PLD) and characterized using X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), atomic force microscopy (AFM), nanoindentation, and scratch tests. XRD analysis confirmed the formation of the desired perovskite phases without secondary phases. XPS revealed the presence of La, Co/Co, Fe/Fe, and Sr oxidation states. SEM and AFM imaging showed compact, nanostructured surfaces with varying morphologies (shape and size of surface irregularities) depending on the composition. Sr doping led to surface refinement and increased nanohardness and adhesion. Transmission electron microscopy (TEM) analysis confirmed the columnar growth of nanocrystalline films. Sr-doped LaCoO demonstrated enhanced sensitivity and stability in the presence of NO gas compared to pure LaCoO, as evidenced by electrical resistivity measurements within 230 ÷ 440 °C. At the same time, it was found that Sr doping stabilizes the catalytic activity of LaFeO (in the range of 300 ÷ 350 °C), although its behavior in the presence of NO differs from that of LaCo(Sr)O-especially in terms of response and recovery times. These findings highlight the potential of Sr-doped LaCoO and LaFeO thin films for NO sensing applications.

References
1.
Hong H, Sun J, Wu C, Liu Z . High Performance Mixed Potential Type NO Gas Sensor Based on Porous YSZ Layer Formed with Graphite Doping. Sensors (Basel). 2019; 19(15). PMC: 6696306. DOI: 10.3390/s19153337. View

2.
Di Battista V, Danielsen P, Gajewicz-Skretna A, Kedziorski A, Seiffert S, Ma-Hock L . Oxide-Perovskites for Automotive Catalysts Biotransform and Induce Multicomponent Clearance and Hazard. ACS Nano. 2024; 18(47):32672-32693. PMC: 11604102. DOI: 10.1021/acsnano.4c10135. View

3.
Li X, Fu L, Karimi-Maleh H, Chen F, Zhao S . Innovations in WO gas sensors: Nanostructure engineering, functionalization, and future perspectives. Heliyon. 2024; 10(6):e27740. PMC: 10955316. DOI: 10.1016/j.heliyon.2024.e27740. View

4.
Espinoza-Gonzalez R, Caamano J, Castillo X, Orlandi M, Felix A, Flores M . Selective NO Detection of CaCuTiO Ceramic Prepared by the Sol-Gel Technique and DRIFT Measurements to Elucidate the Gas Sensing Mechanism. Materials (Basel). 2023; 16(9). PMC: 10179786. DOI: 10.3390/ma16093390. View

5.
Szczurek A, Gonstal D, Maciejewska M . The Gas Sensing Drone with the Lowered and Lifted Measurement Platform. Sensors (Basel). 2023; 23(3). PMC: 9920096. DOI: 10.3390/s23031253. View