AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
Article Link
Collect
Submit Manuscript
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Research Article | Open Access

An ultrahigh energy storage efficiency and recoverable density in Bi0.5Na0.5TiO3 with the modification of Sr0.85La0.1TiO3 via viscous polymer process

Fukang ChenaLishun YangaHaoran FengaQin LiaXinyu ZengaKun YuaChunlin SongaYan Yana,( )Li Jinb,( )Dou Zhangc,( )
School of Materials and Energy, Southwest University, Chongqing, 400715, China
Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an, 710049, China
State Key Laboratory of Powder Metallurgy, Central South University, Changsha, 410083, China

Peer review under responsibility of The Chinese Ceramic Society.

Show Author Information

Graphical Abstract

Abstract

Currently, the development of dielectric ceramic capacitors is restricted by the contradiction between high efficiency and high recoverable density. Therefore, a novel strategy was designed to achieve a superior balance between them. Firstly, introducing Sr0.85La0.1TiO3 can enhance the content of the weak polar phase (P4bm) to become the main component, which can optimize the relaxor behaviour and improve efficiency. Then, the electric breakdown strength was effectively enhanced by grain refinement and viscous polymer processing. Finally, a high recoverable energy density of ~5.3 J/cm3 and an excellent efficiency of ~92.2% were attained in 0.9Bi0.5Na0.5TiO3-0.1Na0.8Sr0.1NbO3 ceramic with the addition of 0.35Sr0.85La0.1TiO3 after viscous polymer processing. The piezoelectric force microscope had been applied to prove the high activity of the polar nanoregions and finite element analysis was adopted to explain the reasons for the enhancing electric breakdown strength. In addition, this ceramic exhibits good temperature and frequency stability, and a fast discharging rate of 0.11 μs, making it a potential candidate for the actual application.

References

[1]

Li LS, Fan PY, Wang MQ, Takesue N, Salamon D, Vtyurin AN, et al. Review of lead-free Bi-based dielectric ceramics for energy-storage applications. J Phys Appl Phys 2021;54:293001.

[2]

Yang ZY, Yuan Y, Cao L, Li EZ, Zhang SR. Relaxor ferroelectric (Na0.5Bi0.5)0.4Sr0.6TiO3-based ceramics for energy storage application. Ceram Int 2020;46:11282–9.

[3]

Jain A, Wang YG, Shi LN. Recent developments in BaTiO3 based lead-free materials for energy storage applications. J Alloys Compd 2022;928:167066.

[4]

Kang RR, Wang ZP, Yang WJ, Zhu XP, He LQ, Gao YF, et al. Enhanced energy storage performance in Sr0.7La0.2Zr0.15Ti0.85O3-modified Bi0.5Na0.5TiO3 ceramics via constructing local phase coexistence. Chem Eng J 2022;446:137105.

[5]

Yang ZT, Du HL, Jin L, Poelman D. High-performance lead-free bulk ceramics for electrical energy storage applications: design strategies and challenges. J Mater Chem A 2021;9:18026–85.

[6]

Li TY, Jiang XW, Li J, Xie AW, Fu J, Zuo RZ. Ultrahigh energy-storage performances in lead-free Na0.5Bi0.5TiO3-based relaxor antiferroelectric ceramics through a synergistic design strategy. ACS Appl Mater Interfaces 2022;14:22263–9.

[7]

Zhang FB, Dai ZH, Liu WG, Wei YX, Xi ZZ, Ren XB. Improvement of dielectric and energy storage properties in Sr0.85Bi0.1ZrO3 modified (Bi0.5Na0.5)0.7Sr0.3TiO3 lead-free ceramics. J Alloys Compd 2022;908:164577.

[8]

Bilal MK, Wang J, Bashir R, Liu H, Asif SU, Xie JY, et al. A novel relaxor (Bi,Na,Ba)(Ti,Zr)O3 lead-free ceramic with high energy storage performance. J Am Ceram Soc 2021;104:3982–91.

[9]

Hu RR, Lin Y, Zhang M, Yuan QB, Yang HB. Enhancement of recoverable energy density and efficiency of K0.5Na0.5NbO3 ceramic modified by Bi(Mg0.5Zr0.5)O3. Mater Today Energy 2022;30:101185.

[10]

Kang F, Zhang LX, Yang WJ, Kang RR, Xue R, He LQ, et al. Achieving ultrahigh energy storage performance in BiFeO3-BaTiO3 based lead free relaxors via a composition optimization strategy. J Eur Ceram Soc 2022;42:6958–67.

[11]

Ma H, Ismael MA. Preparation and optimization of silver niobate-based lead-free ceramic energy storage materials. Ceram Int 2022;48:32613–27.

[12]

Shi W, Yang Y, Zhang L, Jing R, Hu Q, Alikin DO, et al. Enhanced energy storage performance of eco-friendly BNT-based relaxor ferroelectric ceramics via polarization mismatch-reestablishment and viscous polymer process. Ceram Int 2022;48:6512–9.

[13]

Hu D, Pan Z, Zhang X, Ye H, He Z, Wang M, et al. Greatly enhanced discharge energy density and efficiency of novel relaxation ferroelectric BNT-BKT-based ceramics. J Mater Chem C 2020;8:591–601.

[14]

Huang Y, Li F, Hao H, Xia FQ, Liu HX, Zhang SJ. Bi0.51Na0.47)TiO3 based lead free ceramics with high energy density and efficiency. J Materiomics 2019;5:385–93.

[15]

Yu Z, Zeng JT, Zheng LY, Rousseau A, Li GR, Kassiba A. Microstructure effects on the energy storage density in BiFeO3-based ferroelectric ceramics. Ceram Int 2021;47:12735–41.

[16]

Qin YY, Shang F, Chen GH, Xu JW, Wang Y, Li ZC, et al. Achieving ultrahigh discharge energy and power density in niobate-based glass ceramics via A-site substitution modulation during crystallization. J Mater Chem A 2022;10:11535–41.

[17]

Yu YX, Zhang YY, Zhang Y, Li H, Zhang QF, Lu YM, et al. High-temperature energy storage performances in (1-x)(Na0.50Bi0.50TiO3)-xBaZrO3 lead-free relaxor ceramics. Ceram Int 2020;46:28652–8.

[18]

Jin Q, Zhao LL, Cui B, Wang J, Ma HJ, Zhang R, et al. Enhanced energy storage properties in lead-free BaTiO3@Na0.5K0.5NbO3 nano-ceramics with nanodomains via a core-shell structural design. J Mater Chem C 2020;8:5248–58.

[19]

Che ZY, Ma L, Luo GG, Xu C, Cen ZY, Feng Q, et al. Phase structure and defect engineering in (Bi0.5Na0.5)TiO3-based relaxor antiferroelectrics toward excellent energy storage performance. Nano Energy 2022;100:107484.

[20]

Yan F, Huang KW, Jiang T, Zhou XF, Shi YJ, Ge GL, et al. Significantly enhanced energy storage density and efficiency of BNT-based perovskite ceramics via A-site defect engineering. Energy Storage Mater 2020;30:392–400.

[21]

Li TY, Chen PF, Li F, Wang CC. Energy storage performance of Na0.5Bi0.5TiO3-SrTiO3 lead-free relaxors modified by AgNb0.85Ta0.15O3. Chem Eng J 2021;406:127151.

[22]

Yang HB, Tian JH, Lin Y, Ma JQ. Realizing ultra-high energy storage density of lead-free 0.76Bi0.5Na0.5TiO3-0.24SrTiO3-Bi(Ni2/3Nb1/3)O3 ceramics under low electric fields. Chem Eng J 2021;418:129337.

[23]

Li D, Lin Y, Yuan QB, Zhang M, Ma L, Yang HB. A novel lead-free Na0.5Bi0.5TiO3-based ceramic with superior comprehensive energy storage and discharge properties for dielectric capacitor applications. J Materiomics 2020;6:743–50.

[24]

Qi H, Xie A, Zuo R. Local structure engineered lead-free ferroic dielectrics for superior energy-storage capacitors: a review. Energy Storage Mater 2022;45:541–67.

[25]

Li D, Zeng X, Li Z, Shen Z-Y, Hao H, Luo W, et al. Progress and perspectives in dielectric energy storage ceramics. J Adv Ceram 2021;10:675–703.

[26]

Chen F, Zhang Y, Li Y, Yan Y, Yang L, Zeng X, et al. The effects of R2O3 (R=La, Yb, Gd) on the microstructure, dielectric, ferroelectric, and energy storage properties of Ba0.65Bi0.07Sr0.245TiO3 relaxor ferroelectric ceramics. Ceram Int 2023;49:2626–37.

[27]

Yan B, Chen K, An L. Design and preparation of lead-free (Bi0.4Na0.2K0.2Ba0.2)TiO3-Sr(Mg1/3Nb2/3)O3 high-entropy relaxor ceramics for dielectric energy storage. Chem Eng J 2023;453:139921.

[28]

Liu S, Feng W, Li J, Zhao C, Hu C, He B, et al. Achieving high energy storage density and efficiency simultaneously in Sr(Nb0.5Al0.5)O3 modified BiFeO3 based lead-free ceramics. Chem Eng J 2023;451:138916.

[29]

Wang Y, Ren X, Otsuka K, Saxena A. Temperature–stress phase diagram of strain glass Ti48.5Ni51.5. Acta Mater 2008;56:2885–96.

[30]

Wang Y, Ren X, Otsuka K, Saxena A. Evidence for broken ergodicity in strain glass. Phys Rev B 2007;76:132201.

[31]

Semenovskaya S, Khachaturyan AG. Ferroelectric transition in a random field: possible relation to relaxor ferroelectrics. Ferroelectrics 1998;206:157–80.

[32]

Zhang L, Jing R, Huang Y, Hu Q, Alikin DO, Shur VY, et al. Enhanced antiferroelectric-like relaxor ferroelectric characteristic boosting energy storage performance of (Bi0.5Na0.5)TiO3-based ceramics via defect engineering. J Materiomics 2022;8:527–36.

[33]

Lv J, Li Q, Li Y, Tang M, Jin D, Yan Y, et al. Significantly improved energy storage performance of NBT-BT based ceramics through domain control and preparation optimization. Chem Eng J 2021;420:129900.

[34]

Liu G, Tang M, Hou X, Guo B, Lv J, Dong J, et al. Energy storage properties of bismuth ferrite based ternary relaxor ferroelectric ceramics through a viscous polymer process. Chem Eng J 2021;412:127555.

[35]

Yan Y, Zeng X, Tang M, Song S, Chen F, Wang Y, et al. Enhancement in energy storage performance of La-modified bismuth-ferrite-based relaxor ferroelectric ceramics by defect compensation and process optimization. Ceram Int 2022;48:33553–62.

[36]

Toby BH. EXPGUI, a graphical user interface for GSAS. J Appl Crystallogr 2001;34:210–3.

[37]

Liu X, Rao RR, Shi J, He JY, Zhao YX, Liu J, et al. Effect of oxygen vacancy and A-site-deficiency on the dielectric performance of BNT-BT-BST relaxors. J Alloys Compd 2021;875:159999.

[38]

Yadav AK, Fan HQ, Yan BB, Wang C, Zhang MC, Ma JW, et al. High energy storage density and stable fatigue resistance of Na0.46Bi0.46Ba0.05La0.02Zr0.03Ti0.97-xSnxO3 ceramics. Ceram Int 2020;46:5681–8.

[39]

Wei Q, Zhu M, Zheng M, Hou Y. Sr(Zn1/3Nb2/3)O3-induced R3c to P4bm transition and large field-induced strain in 0.80(Bi0.5Na0.5)TiO3–0.20SrTiO3 ceramics. J Mater Res 2019;34:1210–8.

[40]

Shannon RD. Revised effective ionic-radii and systematic studies of interatomic distances in halides and chalcogenides. Acta Crystallogr A 1976;32:751–67.

[41]

Kong X, Yang L, Cheng Z, Liang G, Zhang S. (Ba,Sr)TiO3–Bi(Mg,Hf)O3 lead-free ceramic capacitors with high energy density and energy efficiency. ACS Appl Energy Mater 2020;3:12254–62.

[42]

Pan Y, Wang X, Dong Q, Wang J, Chen H, Dong X, et al. Enhanced energy storage properties of Bi(Ni2/3Nb1/6Ta1/6)O3–NaNbO3 solid solution lead-free ceramics. Ceram Int 2022;48:26466–75.

[43]

Meng D, Feng Q, Wang M, Luo N, Chen X, Liu X, et al. Realising high comprehensive energy storage performance of BaTiO3-based perovskite ceramics via La(Zn1/2Hf1/2)O3 modification. Ceram Int 2022;48:16173–82.

[44]

Liu S, Feng W, Li J, He B, Liu M, Bao Z, et al. Realizing excellent energy storage performance and fatigue endurance in Sr0.7Sm0.2TiO3 modified 0.67BiFeO3-0.33BaTiO3 lead-free relaxor ceramics. J Eur Ceram Soc 2022;42:7430–40.

[45]

Jiang Z, Yuan Y, Yang H, Li E, Zhang S. Excellent thermal stability and energy storage properties of lead-free Bi0.5Na0.5TiO3-based ceramic. J Am Ceram Soc 2022;105:4027–38.

[46]

Wang J, Zhou Z, Xue J. Phase transition, ferroelectric behaviors and domain structures of (Na1/2Bi1/2)1−xTiPbxO3 thin films. Acta Mater 2006;54:1691–8.

[47]

Barker AS, Sievers AJ. Optical studies of the vibrational properties of disordered solids. Rev Mod Phys 1975;47:S1-S179.

[48]

Schutz D, Deluca M, Krauss W, Feteira A, Jackson T, Reichmann K. Lone-pair-induced covalency as the cause of temperature- and field-induced instabilities in bismuth sodium titanate. Adv Funct Mater 2012;22:2285–94.

[49]

Li Z, Wang H, Zhang J, Wu S, Du H, Zong Q, et al. Stabilizing polar P21ma phase in Bi0.5Na0.5TiO3-Na0.91Bi0.09Nb0.94Mg0.06O3 relaxors by CaTiO3 additive to promote energy storage density, efficiency and discharge rate. J Alloys Compd 2023;945:169273.

[50]

Kreisel J, Glazer AM, Jones G, Thomas PA, Abello L, Lucazeau G. An x-ray diffraction and Raman spectroscopy investigation of A-site substituted perovskite compounds: the (NaK)0.5Bi0.5TiO3 (0≤x≤1) solid solution. J Phys Condens Matter 2000;12:3267–80.

[51]

Fu J, Zuo R. Giant electrostrains accompanying the evolution of a relaxor behavior in Bi(Mg,Ti)O3–PbZrO3–PbTiO3 ferroelectric ceramics. Acta Mater 2013;61:3687–94.

[52]

Li F, Chen G, Liu X, Zhai J, Shen B, Zeng H, et al. Phase–composition and temperature dependence of electrocaloric effect in lead–free Bi0.5Na0.5TiO3–BaTiO3–(Sr0.7Bi0.20.1)TiO3 ceramics. J Eur Ceram Soc 2017;37:4732–40.

[53]

Berry KA, Harmer MP. Effect of MgO solute on microstructure development in Al2O3. J Am Ceram Soc 1986;69:143–9.

[54]

Huang J, Fan ZH, Gao SB, Zhang QF, Lu YM, He YB. An effective strategy to realize superior high-temperature energy storage properties in Na0.5Bi0.5TiO3 based lead-free ceramics. Ceram Int 2021;47:25794–9.

[55]

Gong H, Wang X, Zhang S, Wen H, Li L. Grain size effect on electrical and reliability characteristics of modified fine-grained BaTiO3 ceramics for MLCCs. J Eur Ceram Soc 2014;34:1733–9.

[56]

Lai D, Yao Z, You W, Gao B, Guo Q, Lu P, et al. Regulating energy storage performances of 0.85NaNbO3-0.15Bi(Zn2/3Nb1/3)O3 ceramics using BaTiO3. J Materiomics 2022;8:166–73.

[57]

Liu G, Dong J, Zhang L, Yan Y, Jing R, Jin L. Phase evolution in (1−x)(Na0.5Bi0.5)TiO3-xSrTiO3 solid solutions: a study focusing on dielectric and ferroelectric characteristics. J Materiomics 2020;6:677–91.

[58]

Zheng L, Niu Z, Zheng P, Zhang K, Luo C, Zhang JJ, et al. Simultaneously achieving high energy storage performance and remarkable thermal stability in Bi0.5K0.5TiO3-based ceramics. Mater Today Energy 2022;28:101079.

[59]

Yang F, Li Q, Hou DW, Jia YX, Wang WJ, Fan HQ. Enhanced energy storage properties of KNbO3 modified (Bi0.5Na0.5)TiO3-BaTiO3 based lead-free relaxor ferroelectric ceramics. New J Chem 2022;46:20965–71.

[60]

Shen YH, Wu LK, Zhao JH, Liu JJ, Tang LM, Chen XQ, et al. Constructing novel binary Bi0.5Na0.5TiO3-based composite ceramics for excellent energy storage performances via defect engineering. Chem Eng J 2022;439:135762.

[61]

Li Y, Liu Y, Tang M, Lv J, Chen F, Li Q, et al. Energy storage performance of BaTiO3-based relaxor ferroelectric ceramics prepared through a two-step process. Chem Eng J 2021;419:129673.

[62]

Shi J, Fan HQ, Liu X, Ma Y, Li Q. Bi deficiencies induced high permittivity in lead-free BNBT-BST high-temperature dielectrics. J Alloys Compd 2015;627:463–7.

[63]

Wu C, Qiu XM, Ge WW, Chen LY, Liu CY, Zhao HW, et al. Enhanced energy storage density and efficiency in La(Mg2/3Ta1/3)O3-doped BiFeO3 based ceramics. J Alloys Compd 2023;948:169723.

[64]

Zhou S, Pu Y, Zhang X, Shi Y, Gao Z, Feng Y, et al. High energy density, temperature stable lead-free ceramics by introducing high entropy perovskite oxide. Chem Eng J 2022;427:131684.

[65]

Zhang J, Lin Y, Wang L, Yang Y, Yang H, Yuan Q. Significantly enhanced energy storage density in sodium bismuth titanate-based ferroelectrics under low electric fields. J Eur Ceram Soc 2020;40:5458–65.

[66]

Yang F, Pan Z, Ling Z, Hu D, Ding J, Li P, et al. Realizing high comprehensive energy storage performances of BNT-based ceramics for application in pulse power capacitors. J Eur Ceram Soc 2021;41:2548–58.

[67]

Yan F, Shi Y, Zhou X, Zhu K, Shen B, Zhai J. Optimization of polarization and electric field of bismuth ferrite-based ceramics for capacitor applications. Chem Eng J 2021;417:127945.

[68]

Xu Y, Yang Z, Xu K, Cao Y, Tian Y, Guo L, et al. Modulated band structure and phase transitions in calcium hafnate titanate modified silver niobate ceramics for energy storage. Chem Eng J 2021;426:131047.

[69]

Xu M, Wang X, Nong P, Zeng D, Dong Q, Pan Y, et al. 0.90(0.88NaNbO3-0.12Bi(Ni0.5Zr0.5)O3)-0.10CaTiO3 lead-free dielectric ceramics with high energy storage properties. ACS Appl Energy Mater 2023;6:1630–8.

[70]

Xie A, Fu J, Zuo R, Zhou C, Qiao Z, Li T, et al. NaNbO3-CaTiO3 lead-free relaxor antiferroelectric ceramics featuring giant energy density, high energy efficiency and power density. Chem Eng J 2022;429:132534.

[71]

Xie A, Fu J, Zuo R. Achieving stable relaxor antiferroelectric P phase in NaNbO3-based lead-free ceramics for energy-storage applications. J Materiomics 2022;8:618–26.

[72]

Wei T, Liu K, Fan P, Lu D, Ye B, Zhou C, et al. Novel NaNbO3–Sr0.7Bi0·2TiO3 lead-free dielectric ceramics with excellent energy storage properties. Ceram Int 2021;47:3713–9.

[73]

Wang X, Wang X, Huan Y, Li C, Ouyang J, Wei T. A combined optimization strategy for improvement of comprehensive energy storage performance in sodium niobate-based antiferroelectric ceramics. ACS Appl Mater Interfaces 2022;14:9330–9.

[74]

Wang X, Cai W, Xiao Z, Yang G, Yu X, Chen J, et al. High energy-storage performance of lead-free AgNbO3 antiferroelectric ceramics fabricated via a facile approach. J Eur Ceram Soc 2021;41:5163–9.

[75]

Wang M, Xie A, Fu J, Zuo R. Energy storage properties under moderate electric fields in BiFeO3-based lead-free relaxor ferroelectric ceramics. Chem Eng J 2022;440:135789.

[76]

Wang J, Fan H, Wang M, Fan P. Significantly enhanced energy storage performance in Sm-doped 0.88NaNbO3-0.12Sr0·7Bi0·2TiO3 lead-free ceramics. Ceram Int 2021;47:17964–70.

[77]

Wang H, Li E, Xing M, Zhong C. Realizing high energy density and superior charge-discharge characteristics in NN-10BT-based ceramics. Ceram Int 2022;48:32937–45.

[78]

Sun M, Wang X, Li P, Du J, Fu P, Hao J, et al. Realizing ultrahigh breakdown strength and ultrafast discharge speed in novel barium titanate-based ceramics through multicomponent compounding strategy. J Eur Ceram Soc 2023;43:974–85.

[79]

Shi P, Wang X, Lou X, Zhou C, Liu Q, He L, et al. Significantly enhanced energy storage properties of Nd3+ doped AgNbO3 lead-free antiferroelectric ceramics. J Alloys Compd 2021;877:160162.

[80]

Qiao X, Sheng A, Wu D, Zhang F, Chen B, Liang P, et al. A novel multifunctional ceramic with photoluminescence and outstanding energy storage properties. Chem Eng J 2021;408:127368.

[81]

Pan ZB, Hu D, Zhang Y, Liu JJ, Shen B, Zhai JW. Achieving high discharge energy density and efficiency with NBT-based ceramics for application in capacitors. J Mater Chem C 2019;7:4072–8.

[82]

Meng D, Feng Q, Luo N, Yuan C, Zhou C, Wei Y, et al. Effect of Sr(Zn1/3Nb2/3)O3 modification on the energy storage performance of BaTiO3 ceramics. Ceram Int 2021;47:12450–8.

[83]

Ma J, Lin Y, Yang H, Tian J. Achieved high energy storage property and power density in NaNbO3-Bi(Sn0.5Ni0.5)O3 ceramics. J Alloys Compd 2021;868:159206.

[84]

Liu Z-G, Tang Z-H, Hu S-C, Yao D-J, Sun F, Chen D-Y, et al. Excellent energy storage density and efficiency in lead-free Sm-doped BaTiO3–Bi(Mg0.5Ti0.5)O3 ceramics. J Mater Chem C 2020;8:13405–14.

[85]

Li Y, Jiao Y, Zhang S, Li Z, Song C, Dong J, et al. Improved electric energy storage properties of BT-SBT lead-free ceramics incorporating with A-site substitution with Na & Bi ions and liquid sintering generated by Na0.5Bi0.5TiO3. J Alloys Compd 2021;856:156708.

[86]

Ji S, Li Q, Wang D, Zhu J, Zeng M, Hou Z, et al. Enhanced energy storage performance and thermal stability in relaxor ferroelectric (1-x)BiFeO3-x(0.85BaTiO3-0.15Bi(Sn0.5Zn0.5)O3) ceramics. J Am Ceram Soc 2021;104:2646–54.

[87]

Huang Q, Si F, Tang B. The effect of rare-earth oxides on the energy storage performances in BaTiO3 based ceramics. Ceram Int 2022;48:17359–68.

[88]

Dai Z, Xie J, Liu W, Wang X, Zhang L, Zhou Z, et al. Effective strategy to achieve excellent energy storage properties in lead-free BaTiO3-based bulk ceramics. ACS Appl Mater Interfaces 2020;12:30289–96.

[89]

Chen Z, Bu X, Ruan B, Du J, Zheng P, Li L, et al. Simultaneously achieving high energy storage density and efficiency under low electric field in BiFeO3-based lead-free relaxor ferroelectric ceramics. J Eur Ceram Soc 2020;40:5450–7.

[90]

Bai X, Chen Z, Zheng P, Bai W, Zhang J, Li L, et al. High recoverable energy storage density in nominal (0.67-x)BiFeO3-0.33BaTiO3-xBaBi2Nb2O9 lead-free composite ceramics. Ceram Int 2021;47:23116–23.

[91]

Shi LN, Jin RH, Guo YQ, Jain A, Ren ZH, Zhou HZ, et al. Structure, dielectric and energy storage properties of Bi(Mg2/3Nb1/3)O3 modified Na0.5Bi0.5TiO3-NaNbO3 ceramics. J Alloys Compd 2023;950:169855.

[92]

Zhang M, Yang HB, Yu YW, Lin Y. Energy storage performance of K0.5Na0.5NbO3-based ceramics modified by Bi(Zn2/3(Nb0.85Ta0.15)1/3)O3. Chem Eng J 2021;425:131465.

[93]

Cui T, Zhang J, Guo J, Li XJ, Guo S, Huan Y, et al. Outstanding comprehensive energy storage performance in lead-free BiFeO3-based relaxor ferroelectric ceramics by multiple optimization design. Acta Mater 2022;240:118286.

[94]

Yang L, Kong X, Li Q, Lin YH, Zhang S, Nan CW. Excellent energy storage properties achieved in sodium niobate-based relaxor ceramics through doping tantalum. ACS Appl Mater Interfaces 2022;14:32218–26.

[95]

Zeng M, Liu J, Li H, Zhang S. Lead-free (Sr0.7Ca0.3)BiTiO3 ceramics with temperature stable energy storage density and discharge efficiency for pulsed power technology. J Alloys Compd 2022;907:164336.

[96]

Li Y, Zeng M, Tan F, Liu J. Enhanced breakdown strength and excellent energy storage stability by B site hetero-valent doping in Sr0.7Bi0.2TiO3-based lead-free ceramic. J Alloys Compd 2023;947:169504.

[97]

Kong X, Yang L, Cheng Z, Zhang S. Bi-modified SrTiO3-based ceramics for high-temperature energy storage applications. J Am Ceram Soc 2019;103:1722–31.

[98]

Zeng X, Li Y, Dong J, Li J, Yang Z, Song C, et al. The polarization contribution and effect mechanism of Ce-doped 0.65BaTiO3-0.35Sr0.7Bi0.2TiO3 Pb-free ferroelectric ceramics for dielectric energy storage. Ceram Int 2021;47:32015–24.

[99]

Liu G, Dong J, Zhang L, Yu L, Wei F, Li Y, et al. Na0.25Sr0.5Bi0.25TiO3 relaxor ferroelectric ceramic with greatly enhanced electric storage property by a B-site ion doping. Ceram Int 2020;46:11680–8.

[100]

Liu G, Li Y, Dong J, Yu L, Zhang Y, Hu J, et al. Microstructure evolution, mechanism of electric breakdown strength, and dielectric energy storage performance of CuO modified Ba0.65Sr0.245Bi0.07TiO3 Pb-free bulk ceramics. Ceram Int 2019;45:21544–56.

Journal of Materiomics
Pages 566-577
Cite this article:
Chen F, Yang L, Feng H, et al. An ultrahigh energy storage efficiency and recoverable density in Bi0.5Na0.5TiO3 with the modification of Sr0.85La0.1TiO3 via viscous polymer process. Journal of Materiomics, 2024, 10(3): 566-577. https://doi.org/10.1016/j.jmat.2023.08.006

128

Views

2

Crossref

1

Web of Science

1

Scopus

Altmetrics

Received: 23 May 2023
Revised: 17 August 2023
Accepted: 21 August 2023
Published: 11 September 2023
© 2023 The Authors.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

Return