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钽铌酸铅薄膜中的大热电能量转换。

Large pyroelectric energy conversion in lead scandium tantalate thin films.

作者信息

Aravindhan Ashwath, Glinsek Sebastjan, Girod Stephanie, Blazquez Martinez Alfredo, Granzow Torsten, Kovacova Veronika, Defay Emmanuel

机构信息

Materials Research and Technology Department, Luxembourg Institute of Science and Technology (LIST), 41 Rue Du Brill, L-4422 Belvaux, Luxembourg.

University of Luxembourg, 2 Avenue de L'Université, Esch-sur-Alzette L-4365, Luxembourg.

出版信息

Heliyon. 2024 Apr 28;10(9):e30430. doi: 10.1016/j.heliyon.2024.e30430. eCollection 2024 May 15.

Abstract

Non-linear pyroelectric energy harvesting using ferroelectric thin films exhibits high energy conversion, primarily due to their large breakdown field compared to bulks. Here, we report the pyroelectric energy conversion potential of lead scandium tantalate, Pb(ScTa)O (PST) thin film fabricated on a c-sapphire substrate using chemical solution deposition. To enable the application of high electric field and to assess the pyroelectric energy conversion performance, interdigitated electrodes were deposited on the PST thin film. A maximum harvested energy density of 9.1 J cm per cycle was deduced from polarization measurements in films undergoing an Olsen cycle between 0 °C and 150 °C when the electric field was varied between 50 and 1500 kV/cm. Furthermore, PST thin films can reach up to 27 % of Carnot efficiency for a temperature interval of 10 K between 30 °C and 40 °C. This study highlights the significance of PST thin films for electro-thermal energy harvesting and promising opportunities for enhancing the conversion efficiency and power density using thin films or thin film multi-layer capacitors in the future for thermal energy harvesting.

摘要

使用铁电薄膜的非线性热释电能量收集具有高能量转换效率,这主要归因于与块状材料相比其具有较大的击穿场强。在此,我们报道了采用化学溶液沉积法在c面蓝宝石衬底上制备的钪钽酸铅Pb(ScTa)O(PST)薄膜的热释电能量转换潜力。为了能够施加高电场并评估热释电能量转换性能,在PST薄膜上沉积了叉指电极。当电场在50至1500 kV/cm之间变化时,通过对在0°C至150°C之间经历奥尔森循环的薄膜进行极化测量,推导出每循环的最大收集能量密度为9.1 J/cm³。此外,在30°C至40°C之间10 K的温度区间内,PST薄膜的卡诺效率可达27%。这项研究突出了PST薄膜在电热能量收集中的重要性,以及未来利用薄膜或薄膜多层电容器提高转换效率和功率密度以进行热能收集的广阔前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29dd/11079096/70889e30a751/gr1.jpg

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