| [1] |
LIU Y, SCOTT J F, DKHIL B. Direct and indirect measurements on electrocaloric effect: recent developments and perspectives[J]. Applied Physics Reviews, 2016, 3(3): 031102.
|
| [2] |
杨世豪, 钱小石. 电卡制冷技术: 器件发展现状与高熵铁电材料前瞻[J]. 制冷学报, 2024, 45(6): 14-22+56.
|
|
YANG S H, QIAN X S. Electrocaloric cooling technology: current device developments and prospects of high-entropy ferroelectric materials[J]. Journal of Refrigeration, 2024, 45(6): 14-22+56 (in Chinese).
|
| [3] |
NAIR B, USUI T, CROSSLEY S, et al. Large electrocaloric effects in oxide multilayer capacitors over a wide temperature range[J]. Nature, 2019, 575(7783): 468-472.
|
| [4] |
XIAO W R, ZHANG C, GONG X T, et al. Significant enhancement of electrocaloric effect in ferroelectric polycrystalline ceramics through grain boundary barrier engineering[J]. Advanced Functional Materials, 2024, 34(42): 2405241.
|
| [5] |
KRUPSKA-KLIMCZAK M, JANKOWSKA-SUMARA I, SOWA S. Positive and negative electrocaloric effect in soft- and hard-doped commercial PZT ceramics[J]. Ceramics International, 2023, 49(22): 36807-36815.
|
| [6] |
ZHANG L, ZHAO C L, ZHENG T, et al. Electrocaloric refrigeration capacity in BNT-based ferroelectrics benefiting from low depolarization temperature and high breakdown electric field[J]. Journal of Materials Chemistry A, 2021, 9(21): 12772-12781.
|
| [7] |
YANG J L, HAO X H. Electrocaloric effect and pyroelectric performance in (K, Na)NbO3-based lead-free ceramics[J]. Journal of the American Ceramic Society, 2019, 102(11): 6817-6826.
|
| [8] |
CHEN K, YANG C T, MA J, et al. Development of electrocaloric effect in BT-based lead-free ceramic via density adjustment strategy[J]. Journal of Alloys and Compounds, 2023, 968: 171929.
|
| [9] |
CHEN K, MA J, WU B, et al. Optimization of an indirect method for electrocaloric effect in BT-based ceramics validated through the Rayleigh relationship and direct method[J]. Journal of Materials Chemistry C, 2024, 12(36): 14395-14403.
|
| [10] |
ZHAO L, KE X Q, ZHOU Z J, et al. Large electrocaloric effect over a wide temperature range in BaTiO3-modified lead-free ceramics[J]. Journal of Materials Chemistry C, 2019, 7(5): 1353-1358.
|
| [11] |
LIU G, YU W Z, WANG Y, et al. Electrocaloric effect of (Ba1- x Sr x )(Hf x Ti1- x )O3 lead-free ferroelectric ceramics with phase structure regulation[J]. Ceramics International, 2023, 49(22): 34387-34396.
|
| [12] |
WU G H, HE M H, HAO M H, et al. Wide working temperature range and large electrocaloric effect in BaTiO3 based ceramics achieved by regulating phase boundaries through a compensatory ion co-doping strategy[J]. Ceramics International, 2024, 50(18): 32147-32155.
|
| [13] |
ZHAO Y, XIAN F Z, WANG Q, et al. Electrocaloric effects of Ba1- x Ca x Ti0.9Zr0.1O3 through both direct and indirect measurements[J]. Ceramics International, 2024, 50(3): 5104-5110.
|
| [14] |
TIAN Y H, XUE F, LI W, et al. Direct measurement of large electrocaloric effect in BZT-BST lead-free relaxor ferroelectrics near room temperature[J]. Ceramics International, 2025, 51(9): 12101-12108.
|
| [15] |
TAO H, YIN J, ZHAO L, et al. Positive and negative electrocaloric effect in the direct and indirect characterization of NaNbO3-based ceramics with tetragonal-cubic phase boundary[J]. Journal of Materials Chemistry C, 2022, 10(45): 17099-17108.
|
| [16] |
YU H C, YE Z G. Dielectric properties and relaxor behavior of a new (1-x)BaTiO3-xBiAlO3 solid solution[J]. Journal of Applied Physics, 2008, 103(3): 034114.
|
| [17] |
CHEN Y, ZHOU H J, WANG S Z, et al. Diffused phase transition, ionic conduction mechanisms and electric-field dependent ferroelectricity of Nb/Ce co-doped Pb(Zr0.52Ti0.48)O3 ceramics[J]. Journal of Alloys and Compounds, 2021, 854: 155500.
|
| [18] |
HUAN Y, WEI T, WANG X Z, et al. Achieving ultrahigh energy storage efficiency in local-composition gradient-structured ferroelectric ceramics[J]. Chemical Engineering Journal, 2021, 425: 129506.
|
| [19] |
YIN R W, LI J J, SU X P, et al. Emergent enhanced electrocaloric effect within wide temperature span in laminated composite ceramics[J]. Advanced Functional Materials, 2022, 32(5): 2108182.
|
| [20] |
LI Z P, LI D X, SHEN Z Y, et al. Remarkably enhanced dielectric stability and energy storage properties in BNT∶BST relaxor ceramics by A-site defect engineering for pulsed power applications[J]. Journal of Advanced Ceramics, 2022, 11(2): 283-294.
|
| [21] |
LI L F, ZHOU C C, ZOU J M, et al. Structures and properties of the Sb-doped PLZT ferroelectric ceramics around the morphotropic phase boundary[J]. Materials Research Bulletin, 2025, 191: 113549.
|
| [22] |
石雯静, 黄韵瑶, 魏晓勇, 等. Hf4+离子掺杂BNT对电卡性能的影响[J]. 压电与声光, 2022, 44(4): 588-592.
|
|
SHI W J, HUANG Y Y, WEI X Y, et al. Effect of Hf4+ ion doped BNT on the performance of electrocaloric effect[J]. Piezoelectrics & Acoustooptics, 2022, 44(4): 588-592 (in Chinese).
|
| [23] |
CAI Y, LI Q, DU F H, et al. Polymeric nanocomposites for electrocaloric refrigeration[J]. Frontiers in Energy, 2023, 17(4): 450-462.
|
| [24] |
TIAN Y H, XUE F, QIU L, et al. Enhanced electrocaloric and energy storage performances of lead-free BZT-based relaxor ferroelectrics[J]. Materials Science and Engineering: B, 2024, 302: 117237.
|
| [25] |
LI J T, BAI Y, QIN S Q, et al. Direct and indirect characterization of electrocaloric effect in (Na, K)NbO3 based lead-free ceramics[J]. Applied Physics Letters, 2016, 109(16): 162902.
|