Thermal strain induced large electrocaloric effect of relaxor thin film on LaNiO3/Pt composite electrode with the coexistence of nanoscale antiferroelectric and ferroelectric phases in a broad temperature range

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dc.contributor.author Peng, Biaolin
dc.contributor.author Zhang, Qi
dc.contributor.author Lyu, Yinong
dc.contributor.author Liu, Laijun
dc.contributor.author Lou, Xiaojie
dc.contributor.author Shaw, Christopher
dc.contributor.author Huang, Haitao
dc.contributor.author Wang, Zhonglin
dc.date.accessioned 2018-08-03T14:29:17Z
dc.date.available 2018-08-03T14:29:17Z
dc.date.issued 2018-03-08
dc.identifier.citation Biaolin Peng, Qi Zhang, Yinong Lyu, et al., Thermal strain induced large electrocaloric effect of relaxor thin film on LaNiO3/Pt composite electrode with the coexistence of nanoscale antiferroelectric and ferroelectric phases in a broad temperature range. Nano Energy, Volume 47, May 2018, Pages 285-293 en_UK
dc.identifier.issn 2211-2855
dc.identifier.uri https://doi.org/10.1016/j.nanoen.2018.03.003
dc.identifier.uri https://dspace.lib.cranfield.ac.uk/handle/1826/13375
dc.description.abstract Ferroelectric/antiferroelectric thin/thick films with large electrocaloric (EC) effect in a broad operational temperature range are very attractive in solid-state cooling devices. We demonstrated that a large positive electrocaloric (EC) effect (maximum ΔT ~ 20.7 K) in a broad temperature range (~ 110 K) was realized in Pb0.97La0.02(Zr0.65Sn0.3Ti0.05)O3 (PLZST) relaxor antiferroelectric (AFE) thin film prepared using a sol-gel method. The large positive EC effect may be ascribed to the in-plane residual thermal tensile stress during the layer-by-layer annealing process, and the high-quality film structure owing to the utilization of the LaNiO3/Pt composite bottom electrode. The broad EC temperature range may be ascribed to the great dielectric relaxor dispersion around the dielectric peak because of the coexistence of nanoscale multiple FE and AFE phases. Moreover, a large pyroelectric energy density (6.10 Jcm−3) was harvested by using an Olsen cycle, which is much larger than those (usually less than 10− Jcm−3) obtained by using direct thermal-electrical, Stirling and Carnot cycles, etc. These breakthroughs enable the PLZST thin film an attractive multifunctional material for applications in modern solid-state cooling and energy harvesting. en_UK
dc.language.iso en en_UK
dc.publisher Elsevier en_UK
dc.rights Attribution-NonCommercial-NoDerivatives 4.0 International *
dc.rights.uri http://creativecommons.org/licenses/by-nc-nd/4.0/ *
dc.subject Electrocaloric en_UK
dc.subject Antiferroelectric en_UK
dc.subject Relaxor en_UK
dc.subject Thin film en_UK
dc.subject Sol-gel en_UK
dc.title Thermal strain induced large electrocaloric effect of relaxor thin film on LaNiO3/Pt composite electrode with the coexistence of nanoscale antiferroelectric and ferroelectric phases in a broad temperature range en_UK
dc.type Article en_UK
dc.identifier.cris 20511244


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