Tailoring Hierarchical Interfaces Enhances Dielectric and Electrocaloric Performance in Relaxor Ferroelectric Polymers

Haotian Chen , Donglin Han , Xi Zhao , Ruilin Mai , Cenling Huang , Ruhong Luo , Shanyu Zheng , Qiang Li , Yifan Zhao , Zhenhua Ma , Yezhan Lin , Feiyu Zhang , Tian Yao , Xin Chen , Tiannan Yang , Junye Shi , Jiangping Chen , Feihong Du , Xiaoshi Qian

Advanced Fiber Materials ›› 2025, Vol. 7 ›› Issue (4) : 1290 -1301.

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Advanced Fiber Materials ›› 2025, Vol. 7 ›› Issue (4) : 1290 -1301. DOI: 10.1007/s42765-025-00564-3
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Tailoring Hierarchical Interfaces Enhances Dielectric and Electrocaloric Performance in Relaxor Ferroelectric Polymers

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Abstract

Electrocaloric (EC) polymers have garnered significant attention in recent years due to their zero direct greenhouse gas emissions during cooling processes. However, only a few polymers exhibit sufficient refrigeration capacity at low fields, which limits the application of the EC cooling technology. In this work, we show that electrospinning, a mature polymer processing technology, can introduce a complex fibrous matrix that leads to nano-, meso-, and micro-scale structures, and hence a series of hierarchical polar interfaces. The following thermal treatment was applied to enhance breakdown fields and reduce dielectric losses. A series of polyvinylidene fluoride (PVDF)-based fluoropolymers containing cellulose acetate (CA) were prepared. By introducing 10 wt% of CA, the electrospinning process significantly improves the polar entropy of the fluoropolymer system and significantly improves the polymer’s breakdown strength, polarization, and electrocaloric performances, compared to their solution cast counterparts. The polar entropy variations among various polymeric composites were elucidated using data acquired from multiple structural characterization tools. By linking the optimized hierarchical interface structures and the overall EC performances, this study provides new routes for designing high-performance EC nanocomposites that can be facilely tailored by the matured processes of fibrous, polymeric composites.

Keywords

Hierarchical interfaces / Electrocaloric / Electrospinning / Thermal treatment / Cellulose acetate

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Haotian Chen, Donglin Han, Xi Zhao, Ruilin Mai, Cenling Huang, Ruhong Luo, Shanyu Zheng, Qiang Li, Yifan Zhao, Zhenhua Ma, Yezhan Lin, Feiyu Zhang, Tian Yao, Xin Chen, Tiannan Yang, Junye Shi, Jiangping Chen, Feihong Du, Xiaoshi Qian. Tailoring Hierarchical Interfaces Enhances Dielectric and Electrocaloric Performance in Relaxor Ferroelectric Polymers. Advanced Fiber Materials, 2025, 7(4): 1290-1301 DOI:10.1007/s42765-025-00564-3

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References

[1]

ShiJ, HanD, LiZ, YangL, LuS-G, ZhongZ, ChenJ, ZhangQ, QianX. Electrocaloric cooling materials and devices for zero-global-warming-potential, high-efficiency refrigeration. Joule, 2019, 31200

[2]

CaiY, LiQ, DuF, FengJ, HanD, ZhengS, YangS, ZhangY, YuB, ShiJ, QianX. Polymeric nanocomposites for electrocaloric refrigeration. Front nergy., 2022, 17: 450-462

[3]

QianX. Pumping into a cool future: electrocaloric materials for zero-carbon refrigeration. Front Energy, 2022, 1619

[4]

QianX, ChenX, ZhuL, ZhangQM. Fluoropolymer ferroelectrics: multifunctional platform for polar-structured energy conversion. Science, 2023, 380eadg0902

[5]

QianXS, WuS, FurmanE, ZhangQM, SuJ. Ferroelectric polymers as multifunctional electroactive materials: recent advances, potential, and challenges. MRS Commun, 2015, 5115

[6]

QianX, YangT, ZhangT, ChenLQ, ZhangQ. Anomalous negative electrocaloric effect in a relaxor/normal ferroelectric polymer blend with controlled nano-and meso-dipolar couplings. Appl Phys Lett, 2016, 108142902

[7]

TorellóA, LheritierP, UsuiT, NouchokgweY, GérardM, BoutonO, HiroseS, DefayE. Giant temperature span in electrocaloric regenerator. Science, 2020, 370125

[8]

WangY, ZhangZ, UsuiT, BenedictM, HiroseS, LeeJ, KalbJ, SchwartzD. A high-performance solid-state electrocaloric cooling system. Science, 2020, 370129

[9]

LiQ, ShiJ, HanD, DuF, ChenJ, QianX. Concept design and numerical evaluation of a highly efficient rotary electrocaloric refrigeration device. Appl Therm Eng, 2021, 190116806

[10]

ShiJ, LiQ, GaoT, HanD, LiY, ChenJ, QianX. Numerical evaluation of a kilowatt-level rotary electrocaloric refrigeration system. Int J Refrig, 2021, 121279

[11]

WuH, ZhuY, YanW, ZhangS, BudimanW, LiuK, WuJ, MengY, ZhaoX, MehtaA. A self-regenerative heat pump based on a dual-functional relaxor ferroelectric polymer. Science, 2024, 386546

[12]

BaiP, ZhangQ, CuiH, BoY, ZhangD, HeW, ChenY, MaR. An active pixel-matrix electrocaloric device for targeted and differential thermal management. Adv Mater, 2023, 352209181

[13]

HanD, ZhangY, HuangC, ZhengS, WuD, LiQ, DuF, DuanH, ChenW, ShiJ, ChenJ, LiuG, ChenX, QianX. Self-oscillating polymeric refrigerator with high energy efficiency. Nature, 2024, 6291041

[14]

LiJ, TorellóA, KovacovaV, PrahU, AravindhanA, GranzowT, UsuiT, HiroseS, DefayE. High cooling performance in a double-loop electrocaloric heat pump. Science, 2023, 382801

[15]

WangZ, BoY, BaiP, ZhangS, LiG, WanX, LiuY, MaR, ChenY. Self-sustaining personal all-day thermoregulatory clothing using only sunlight. Science, 2023, 3821291

[16]

MischenkoAS, ZhangQ, ScottJF, WhatmoreRW, MathurND. Giant electrocaloric effect in thin-film PbZr0.95Ti0.05O3. Science, 2006, 3111270

[17]

NairB, UsuiT, CrossleyS, KurdiS, Guzmán-VerriG, MoyaX, HiroseS, MathurN. Large electrocaloric effects in oxide multilayer capacitors over a wide temperature range. Nature, 2019, 575468

[18]

DuF, SongZ, XuY, HanD, LiQ, ZhengS, ShenJ, QianX. Multi-element B-site substituted perovskite ferroelectrics exhibit enhanced electrocaloric effect. Sci China Technol Sci, 2023, 661119

[19]

ZhangC, DuQ, LiW, SuD, ShenM, QianX, LiB, ZhangH, JiangS, ZhangG. High electrocaloric effect in barium titanate-sodium niobate ceramics with core-shell grain assembly. J Materiomics, 2020, 6618

[20]

NeeseB, ChuB, LuS-G, WangY, FurmanE, ZhangQM. Large electrocaloric effect in ferroelectric polymers near room temperature. Science, 2008, 321821

[21]

LiX, QianX-S, GuH, ChenX, LuSG, LinM, BatemanF, ZhangQM. Giant electrocaloric effect in ferroelectric poly(vinylidenefluoride-trifluoroethylene) copolymers near a first-order ferroelectric transition. Appl Phys Lett, 2012, 101132903

[22]

QianXS, YeHJ, YangTN, ShaoWZ, ZhenL, FurmanE, ChenLQ, ZhangQM. Internal biasing in relaxor ferroelectric polymer to enhance the electrocaloric effect. Adv Funct Mater, 2015, 255134

[23]

QianX, HanD, ZhengL, ChenJ, TyagiM, LiQ, DuF, ZhengS, HuangX, ZhangS, ShiJ, HuangH, ShiX, ChenJ, QinH, BernholcJ, ChenX, ChenL-Q, HongL, ZhangQM. High-entropy polymer produces a giant electrocaloric effect at low fields. Nature, 2021, 600664

[24]

LiQ, WeiL, ZhongN, ShiX, HanD, ZhengS, DuF, ShiJ, ChenJ, HuangH, DuanC, QianX. Low-k nano-dielectrics facilitate electric-field induced phase transition in high-k ferroelectric polymers for sustainable electrocaloric refrigeration. Nat Commun, 2024, 15702

[25]

ChenY, QianJ, YuJ, GuoM, ZhangQ, JiangJ, ShenZ, ChenLQ, ShenY. An all-scale hierarchical architecture induces colossal room-temperature electrocaloric effect at ultralow electric field in polymer nanocomposites. Adv Mater, 2020, 321907927

[26]

HanD, DuF, ZhangY, ZhengL, ChenJ, HuangX, LiQ, ZhengS, ShiJ, ChenJ. Molecular interface regulation enables order-disorder synergy in electrocaloric nanocomposites. Joule, 2023, 72174

[27]

ZhangG, WengL, HuZ, LiuY, BaoR, ZhaoP, FengH, YangN, LiM-Y, ZhangS, JiangS, WangQ. Nanoconfinement-induced giant electrocaloric effect in ferroelectric polymer nanowire array integrated with aluminum oxide membrane to exhibit record cooling power density. Adv Mater, 2019, 311806642

[28]

ZouK, ShaoC, BaiP, ZhangC, YangY, GuoR, HuangH, LuoW, MaR, CaoY, SunA, ZhangG, JiangS. Giant room-temperature electrocaloric effect of polymer-ceramic composites with orientated BaSrTiO3 nanofibers. Nano Lett, 2022, 226560

[29]

ZhangG, LiQ, GuH, JiangS, HanK, GadinskiMR, HaqueMA, ZhangQ, WangQ. Ferroelectric polymer nanocomposites for room-temperature electrocaloric refrigeration. Adv Mater, 2015, 271450

[30]

WangF, WangZ-Y, LuoY-R, LiM-D, YangY-R, LiW, WangX-L, YangT, ShenQ-D. Two dimensional confinement induced discontinuous chain transitions for augmented electrocaloric cooling. Nat Commun, 2025, 16675

[31]

ZhengS, DuF, ZhengL, HanD, LiQ, ShiJ, ChenJ, ShiX, HuangH, LuoY, YangY, O’ReillyP, WeiL, de SouzaN, HongL, QianX. Colossal electrocaloric effect in an interface-augmented ferroelectric polymer. Science, 2023, 3821020

[32]

ZhangQM, BhartiV, ZhaoX. Giant electrostriction and relaxor ferroelectric behavior in electron-irradiated poly(vinylidene fluoride-trifluoroethylene) copolymer. Science, 1998, 2802101

[33]

ZhangQM, LiH, PohM, XiaF, ChengZY, XuH, HuangC. An all-organic composite actuator material with a high dielectric constant. Nature, 2002, 419284

[34]

MaY, ZhangS, SuJ, CaoZ, WangX, ChenY, GeX. Research progress and industrial application of electrostatic spinning nanofibers in foods. Food Eng Rev, 2024, 17: 1-26

[35]

ZhengQ, XiY, WengY. Functional electrospun nanofibers: fabrication, properties, and applications in wound-healing process. RSC Adv, 2024, 143359

[36]

DangC, WangZ, Hughes-RileyT, DiasT, QianS, WangZ, WangX, LiuM, YuS, LiuR. Fibres—threads of intelligence—enable a new generation of wearable systems. Chem Soc Rev, 2024, 53: 8790-8846

[37]

KalimuldinaG, TurdakynN, AbayI, MedeubayevA, NurpeissovaA, AdairD, BakenovZ. A review of piezoelectric PVDF film by electrospinning and its applications. Sensors, 2020, 205214

[38]

CozzaES, MonticelliO, MarsanoE, CebeP. On the electrospinning of PVDF: influence of the experimental conditions on the nanofiber properties. Polym Int, 2013, 6241

[39]

ZhangJ, YangT, TianG, LanB, DengW, TangL, AoY, SunY, ZengW, RenX, LiZ, JinL, YangW. Spatially confined MXene/PVDF nanofiber piezoelectric electronics. Adv Fiber Mater, 2024, 6133

[40]

HeZ, RaultF, LewandowskiM, MohsenzadehE, SalaünF. Electrospun PVDF nanofibers for piezoelectric applications: a review of the influence of electrospinning parameters on the β phase and crystallinity enhancement. Polymers, 2021, 13174

[41]

WangX, SunF, YinG, WangY, LiuB, DongM. Tactile-sensing based on flexible PVDF nanofibers via electrospinning: a review. Sensors, 2018, 18330

[42]

QianJ, GuoM, JiangJ, DanZ, ShenY. Enhanced electrocaloric strength of P (VDF-TrFE-CFE) induced by edge-on lamellae. J Mater Chem C, 2019, 73212

[43]

QianJ, JiangJ, ShenY. Enhanced electrocaloric strength in P(VDF-TrFE-CFE) by decreasing the crystalline size. J Materiomics, 2019, 5357

[44]

RamadanKS, SameotoD, EvoyS. A review of piezoelectric polymers as functional materials for electromechanical transducers. Smart Mater Struct, 2014, 23033001

[45]

KhadtareS, KoEJ, KimYH, LeeHS, MoonDK. A flexible piezoelectric nanogenerator using conducting polymer and silver nanowire hybrid electrodes for its application in real-time muscular monitoring system. Sens Actuators A, 2019, 299111575

[46]

PircR, KutnjakZ, BlincR, ZhangQM. Upper bounds on the electrocaloric effect in polar solids. Appl Phys Lett, 2011, 98021909

[47]

de FreitasRR, SennaAM, BotaroVR. Influence of degree of substitution on thermal dynamic mechanical and physicochemical properties of cellulose acetate. Ind Crops Prod, 2017, 109452

[48]

Rodrigues FilhoG, MonteiroDS, da SilvaMC, de AssunçãoRMN, CerqueiraDA, BarudHS, RibeiroSJ, MessadeqY. Synthesis and characterization of cellulose acetate produced from recycled newspaper. Carbohydr Polym, 2008, 7374

[49]

HudaE, Rahmi, Khairan. Preparation and characterization of cellulose acetate from cotton. IOP Conf Ser Earth Environ Sci, 2019, 364012021

[50]

GutiérrezMC, De PaoliM-A, FelisbertiMI. Cellulose acetate and short curauá fibers biocomposites prepared by large scale processing: Reinforcing and thermal insulating properties. Ind Crops Prod, 2014, 52363

[51]

HassenkamT, AnderssonMP, DalbyKN, MackenzieDMA, RosingMT. Elements of Eoarchean life trapped in mineral inclusions. Nature, 2017, 54878

[52]

BarudHS, de Araújo JúniorAM, SantosDB, de AssunçãoRMN, MeirelesCS, CerqueiraDA, Rodrigues FilhoG, RibeiroCA, MessaddeqY, RibeiroSJL. Thermal behavior of cellulose acetate produced from homogeneous acetylation of bacterial cellulose. Thermochim Acta, 2008, 47161

Funding

National Key R&D Program of China(2020YFA0711500)

National Natural Science Foundation of China(T2488302)

NSFC Young Student Basic Research Program(24Z033403036)

China National Postdoctoral Program for Innovative Talent(BX20240220)

Natural Science Foundation of Shanghai Municipality(22Z510204033)

State Key Laboratory of Mechanical System and Vibration(MSVZD202211)

Prospective Research Program at Shanghai Jiao Tong University (19X160010008)

Shanghai Jiao Tong University 2030 Initiative

Shanghai Jiao Tong University SiYuan Scholar Program

RIGHTS & PERMISSIONS

Donghua University, Shanghai, China

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