• Journal of Inorganic Materials
  • Vol. 37, Issue 4, 376 (2022)
References

[1] T CORREIA, Q ZHANG. New Generation of Coolers: Electrocaloric Materials, 34(2014).

[2] J SCOTT. Electrocaloric materials. Annual Review of Materials Research, 41, 229-240(2011).

[3] S FÄHLER, U RÖßLER, O KASTNER et al. Caloric effects in ferroic materials: new concepts for cooling. Advanced Engineering Materials, 14, 10-19(2012).

[4] J SHI, D HAN, Z LI et al. Electrocaloric cooling materials and devices for zero-global-warming-potential, high-efficiency refrigeration. Joule, 3, 1200-1225(2019).

[5] B NAIR, T USUI, S CROSSLEY et al. Large electrocaloric effects in oxide multilayer capacitors over a wide temperature range. Nature, 575, 468-472(2019).

[6] A MISCHENKO, Q ZHANG, J SCOTT et al. Giant electrocaloric effect in thin-film PbZr0.95Ti0.05O3. Science, 311, 1270-1271(2006).

[7] H WU, J ZHU, T ZHANG. Pseudo-first-order phase transition for ultrahigh positive/negative electrocaloric effects in perovskite ferroelectrics. Nano Energy, 16, 419-427(2015).

[8] M PARK, H KIM, Y KIM et al. Giant negative electrocaloric effects of Hf0.5Zr0.5O2 thin films. Advanced Materials, 28, 7956-7961(2016).

[9] F ZHUO, Q LI, J GAO et al. Coexistence of multiple positive and negative electrocaloric responses in (Pb,La)(Zr,Sn,Ti)O3 single crystal. Applied Physics Letters, 108, 082904(2016).

[10] J LI, S QIN, Y BAI et al. Flexible control of positive and negative electrocaloric effects under multiple fields for a giant improvement of cooling capacity. Applied Physics Letters, 111, 093901(2017).

[11] J LI, H WU, J LI et al. Room-temperature symmetric giant positive and negative electrocaloric effect in PbMg0.5W0.5O3 antiferroelectric ceramic. Advanced Functional Materials, 31, 2101176(2021).

[12] S LU, X TANG, S WU et al. Large electrocaloric effect in ferroelectric materials. Journal of Inorganic Materials, 29, 6-12(2014).

[13] Y YU, H DU, Z YANG et al. Electrocaloric effect of lead-free bulk ceramics: current status and challenges. Journal of Inorganic Materials, 35, 633-646(2020).

[14] M WU, D SONG, G VATS et al. Defect-controlled electrocaloric effect in PbZrO3 thin films. Journal of Materials Chemistry C, 6, 10332-10340(2018).

[15] Y JIA, J SUNGTAEK. Direct characterization of the electrocaloric effects in thin films supported on substrates. Applied Physics Letters, 103, 042903(2013).

[16] D SHAN, K PAN, Y LIU et al. High fidelity direct measurement of local electrocaloric effect by scanning thermal microscopy. Nano Energy, 67, 104203(2020).

[17] Y LIU, J SCOTT, B DKHIL. Direct and indirect measurements on electrocaloric effect: recent developments and perspectives. Applied Physics Reviews, 3, 031102(2016).

[18] M SANLIALP, V SHVARTSMAN, M ACOSTA et al. Strong electrocaloric effect in lead-free 0.65Ba(Zr0.2Ti0.8)O3-0.35(Ba0.7Ca0.3) TiO3 ceramics obtained by direct measurements. Applied Physics Letters, 106, 062901(2015).

[19] J LI, D ZHANG, S QIN et al. Large room-temperature electrocaloric effect in lead-free BaHfxTi1-xO3 ceramics under low electric field. Acta Materialia, 115, 58-67(2016).

[20] P WU, X LOU, J LI et al. Direct and indirect measurement of electrocaloric effect in lead-free (100-x)Ba(Hf0.2Ti0.8)O3-x(Ba0.7Ca0.3)TiO3 ceramics near multi-phase boundary. Journal of Alloys and Compounds, 725, 275-282(2017).

[21] W GENG, Y LIU, X MENG et al. Giant negative electrocaloric effect in antiferroelectric La-doped Pb(ZrTi)O3 thin films near room temperature. Advanced Materials, 27, 3165-3169(2015).

[22] Y MA, A GRÜNEBOHM, K MEYER et al. Positive and negative electrocaloric effect in BaTiO3 in the presence of defect dipoles. Physical Review B, 94, 094113(2016).

[23] F WEYLAND, A BRADEŠKO, Y MA et al. Impact of polarization dynamics and charged defects on the electrocaloric response of ferroelectric Pb(Zr,Ti)O3 ceramics. Energy Technology, 6, 1519-1525(2018).

[24] J LI, R YIN, X SU et al. Complex phase transitions and associated electrocaloric effects in different oriented PMN-30PT single crystals under multi-fields of electric field and temperature. Acta Materialia, 182, 250-256(2020).

[25] G VATS, A KUMAR, N ORTEGA et al. Giant pyroelectric energy harvesting and a negative electrocaloric effect in multilayered nanostructures. Energy & Environmental Science, 9, 1335-1345(2016).

[26] T ZHANG, W LI, Y HOU et al. Positive/negative electrocaloric effect induced by defect dipoles in PZT ferroelectric bilayer thin films. RSC Advances, 6, 71934-71939(2016).

[27] X HAO, J ZHAI, L KONG et al. A comprehensive review on the progress of lead zirconate-based antiferroelectric materials. Progress in Materials Science, 63, 1-57(2014).

[28] A GRüNEBOHM, Y MA, M MARATHE et al. Origins of the inverse electrocaloric effect. Energy Technology, 6, 1491-1511(2018).

[29] M WU, D SONG, M GUO et al. Remarkably enhanced negative electrocaloric effect in PbZrO3 thin film by interface engineering. ACS Applied Materials & Interfaces, 11, 36863-36870(2019).

[30] F GOUPIL, A BERENOV, A AXELSSON et al. Direct and indirect electrocaloric measurements on <001> PbMg1/3Nb2/3O3-30PbTiO3 single crystals. Journal of Applied Physics, 111, 124109(2012).

[31] Y BAI, G ZHENG, S SHI. Abnormal electrocaloric effect of Na0.5Bi0.5TiO3-BaTiO3 lead-free ferroelectric ceramics above room temperature. Materials Research Bulletin, 46, 1866-1869(2011).

[32] M YE, T LI, Q SUN et al. A giant negative electrocaloric effect in Eu-doped PbZrO3 thin films. Journal of Materials Chemistry C, 4, 3375-3378(2016).

[33] W WANG, X CHEN, Q SUN et al. Tailoring the negative electrocaloric effect of PbZrO3 antiferroelectric thin films by Yb doping. Journal of Alloys and Compounds, 830, 154581(2020).

[34] R PIRC, B ROŽIČ, J KORUZA et al. Negative electrocaloric effect in antiferroelectric PbZrO3. EPL (Europhysics Letters), 107, 17002(2014).

[35] Y ZHAO, Q LIU, X TANG et al. Giant negative electrocaloric effect in anti-ferroelectric (Pb0.97La0.02)(Zr0.95Ti0.05)O3 ceramics. ACS Omega, 4, 14650-14654(2019).

[36] Z NIU, Y JIANG, X TANG et al. Giant negative electrocaloric effect in B-site non-stoichiometric (Pb0.97La0.02)(Zr0.95Ti0.05)1+yO3 anti-ferroelectric ceramics. Materials Research Letters, 6, 384-389(2018).

[37] Z XU, Z FAN, X LIU et al. Impact of phase transition sequence on the electrocaloric effect in Pb(Nb,Zr,Sn,Ti)O3 ceramics. Applied Physics Letters, 110, 082901(2017).

[38] F ZHUO, Q LI, Q YAN et al. Temperature induced phase transformations and negative electrocaloric effect in (Pb,La)(Zr,Sn,Ti)O3 antiferroelectric single crystal. Journal of Applied Physics, 122, 154101(2017).

[39] F ZHUO, Q LI, J GAO et al. Giant negative electrocaloric effect in (Pb,La)(Zr,Sn,Ti)O3 antiferroelectrics near room temperature. ACS Applied Materials & Interfaces, 10, 11747-11755(2018).

[40] F ZHUO, Q LI, H QIAO et al. Field-induced phase transitions and enhanced double negative electrocaloric effects in (Pb,La)(Zr,Sn,Ti)O3 antiferroelectric single crystal. Applied Physics Letters, 112, 133901(2018).

[41] J CHEN, Z TANG, Q LU et al. Giant negative electrocaloric effect over a broad temperature range in lead-free based Bi0.5(K0.15Na0.85)0.05TiO3 relaxor ferroelectric films. Journal of Alloys and Compounds, 756, 62-67(2018).

[42] M GUO, M WU, W GAO et al. Giant negative electrocaloric effect in antiferroelectric PbZrO3 thin films in an ultra-low temperature range. Journal of Materials Chemistry C, 7, 617-621(2019).