High entropy design: a new pathway to promote the piezoelectricity and dielectric energy storage in perovskite oxides

Shujun Zhang

Microstructures ›› 2023, Vol. 3 ›› Issue (1) : 2023003

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Microstructures ›› 2023, Vol. 3 ›› Issue (1) :2023003 DOI: 10.20517/microstructures.2022.38
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High entropy design: a new pathway to promote the piezoelectricity and dielectric energy storage in perovskite oxides

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Shujun Zhang. High entropy design: a new pathway to promote the piezoelectricity and dielectric energy storage in perovskite oxides. Microstructures, 2023, 3(1): 2023003 DOI:10.20517/microstructures.2022.38

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References

[1]

Liu W.Large piezoelectric effect in Pb-free ceramics.Phys Rev Lett2009;103:257602

[2]

Jaffe B,Marzullo S.Piezoelectric properties of lead zirconate-lead titanate solid-solution ceramics.J Appl Phys1954;25:809-10

[3]

Tao H,Liu Y.Ultrahigh performance in lead-free piezoceramics utilizing a relaxor slush polar state with multiphase coexistence.J Am Chem Soc2019;141:13987-94

[4]

Shrout TR.Lead-free piezoelectric ceramics: alternatives for PZT?.J Electroceram2007;19:113-26

[5]

Fu J.Structural evidence for the polymorphic phase boundary in NKN based perovskites close to the rhombohedral-tetragonal phase coexistence zone.Acta Mater2020;195:1903338

[6]

Qi H,Tian A.Superior energy-storage capacitors with simultaneously giant energy density and efficiency using nanodomain engineered BiFeO3-BaTiO3-NaNbO3 lead-free bulk ferroelectrics.Adv Energy Mater2020;195:571-8

[7]

Chen L,Qi H,Deng S.Outstanding energy storage performance in high-hardness (Bi0.5K0.5)TiO3-based lead-free relaxors via multi-scale synergistic design.Adv Funct Mater2022;32:2110478

[8]

Li F,Damjanovic D,Shrout T.Local structural heterogeneity and electromechanical responses of ferroelectrics: learning from relaxor ferroelectrics.Adv Funct Mater2018;29:1801504

[9]

Yeh JW,Lin SJ.Nanostructured high-entropy alloys with multiple principal elements: novel alloy design concepts and outcomes.Adv Eng Mater2004;6:299-303

[10]

Rost CM,Borman T.Entropy-stabilized oxides.Nat Commun2015;6:8485 PMCID:PMC4598836

[11]

Sarker P,Toher C.High-entropy high-hardness metal carbides discovered by entropy descriptors.Nat Commun2018;9:4980 PMCID:PMC6255778

[12]

Lim X.Mixed-up metals make for stronger, tougher, stretchier alloys.Nature2016;533:306-7

[13]

George EP,Ritchie RO.High-entropy alloys.Nat Rev Mater2019;4:515-34

[14]

Oses C,Curtarolo S.High-entropy ceramics.Nat Rev Mater2020;5:295-309

[15]

Cantor B,Knight P.Microstructural development in equiatomic multicomponent alloys.Mater Sci Eng A2004;375-377:213-8

[16]

Yang BB,Pan H.High-entropy enhanced capacitive energy storage.Nat Mater2022;21:1074-80

[17]

Liu Y,Deng S.Flexible polarization configuration in high-entropy piezoelectrics with high performance.Acta Mater2022;236:118115

[18]

Chen L,Liu H,Qi H.Giant energy-storage density with ultrahigh efficiency in lead-free relaxors via high-entropy design.Nat Commun2022;13:3089 PMCID:PMC9163056

[19]

Li F,Chen Z.Ultrahigh piezoelectricity in ferroelectric ceramics by design.Nat Mater2018;17:349-54

[20]

Viehland D.Symmetry-adaptive ferroelectric mesostates in oriented Pb(BI1/3BII2/3)O3-PbTiO3 crystals.J Appl Phys2000;88:4794

[21]

Chen L,Zhang Z.Local diverse polarization optimized comprehensive energy storage performance in lead-free superparaelectrics.Adv Mater2022;34:e2205787

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