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Full Length Article

One-step synthesis of BaTiO3/CaTiO3 core-shell nanocubes by hydrothermal reaction

ORCID Icon, , , , &
Pages 359-365 | Received 10 Sep 2020, Accepted 18 Dec 2020, Published online: 28 Jan 2021

References

  • Beeby PS, Tudor MJ, White NM. Energy harvesting vibration sources for microsystems. Meas Sci Technol. 2006;17:R175–R195.
  • Roundy S, Wright PK, Rabaey J. A study of low level vibrations as a power source for wireless sensor nodes. Comput Commun. 2003;26: 1131–1144.
  • Morimoto K, Kanno I, Wasa K, et al. High-efficiency piezoelectric energy harvesters of c-axis-oriented epitaxial PZT films transferred inti stainless steel cantilevers. Sens Actuators A. 2010;163:428–432.
  • Chang C, Tranm VH, Wang J, et al. Direct-write piezoelectric polymeric nanogenerator with high energy conversion efficiency. Nano Lett. 2010;10:726–731.
  • Priya S. Advances in energy harvesting using low profile piezoelectric transducers. J Electroceram. 2007;19:165–182.
  • Yoshimura T, Murakami S, Wakazono K, et al. Piezoelectric vibrational energy harvester using lead-free ferroelectric BiFeO3 films. Appl Phys Express. 2013;6:051501.
  • Noheda B, Gonzalo JA, Cross LE, et al. Tetragonal-to-monoclinic phase transition in a ferroelectric perovskite: the structure of PbZr0.52Ti0.48O3. Phys Rev B. 2000;61:8687–8695.
  • Mishra SK, Pandey D, Singh AP. Effect of phase coexistence at morphotropic phase boundary on the properties of Pb(ZrxTi1-x)O3 ceramics. Appl Phys Lett. 1996;69:1707–1709.
  • Oh SH, Jang HM. Enhanced thermodynamic stability of tetragonal-phase field in epitaxial Pb(Zr,Ti)O3 thin films under a two-dimensional compressive stress. Appl Phys Lett. 1998;72:1457–1459.
  • Shrout TR, Zhang SJ. Lead-free piezoelectric ceramics: alternatives for PZT? J Electroceram. 2007;19:111–124.
  • Li J-F, Wang K, Zhu F-Y, et al. (K, Na)NbO3-based lead-free piezoceramics: fundamental aspects, processing technologies, and remaining challenges. J Am Ceram Soc. 2013;96:3677–3696.
  • Liu W, Ren X. Large piezoelectric effect in Pb-free ceramics. Phys Rev Lett. 2009;103:257602.
  • Ueno S, Kawashima H, Nakashima K, et al. Solvothermal preparation of potassium niobate/barium titanate nanocomplex ceramics with three dimensional network-configuration of structure-gradient region and their dielectric properties. J Appl Phys. 2013;114:074103.
  • Hu D, Niu X, Ma H, et al. Topological relations and piezoelectric responses of crystal-axis-oriented BaTiO3/CaTiO3 nanocomposites. RSC Adv. 2017;7:30807–30814.
  • Wang Z, Li H, Hu H, et al. Direct observation of stable negative capacitance in SrTiO3@BaTiO3 heterostructure. Adv Electron Mater. 2019;1901005-1-5.
  • Zhang J, Kumbjar A, He J, et al. Simple cubic super crystals containing PbTe nanocubes and their core-shell building blocks. J Am Chem Soc. 2008;130:15203–15209.
  • Dang F, Kato K, Imai H, et al. Characteristics of CeO2 nanocubes and related polyhedra prepared by using a liquid-liquid interface. Cryst Growth Des. 2010;10:4537–4541.
  • Zhang J, Kumagai H, Yamamura K, et al. Extra-low-temperature oxygen storage capacity of CeO2 nanocrystals with cubic facets. Nano Lett. 2011;11:361–364.
  • Dang F, Mimura K, Kato K, et al. In situ growth BaTiO3 nanocubes and their superlattice from an aqueous process. Nanoscale. 2012;4:1344–1349.
  • Mimura K, Kato K. Dielectric properties of barium titanate nanocube ordered assembly sintered at various temperatures. Jpn J Appl Phys. 2014;53:09PA03.
  • Mimura K, Kato K. Enhanced dielectric properties of BaTiO3 nanocube assembled film in metal–insulator–metal capacitor structure. Appl Phys Express. 2014;7:061501.
  • Gannepalli A, Yablon DG, Tsou AH, et al. Corrigendum: mapping nanoscale elasticity and dissipation using dual frequency contact resonance AFM. Nanotechnology. 2011;22:355705.
  • Itasaka H, Mimura K, Extra Surfactant-Assisted KK. Self-assembly of highly ordered monolayers of BaTiO3 nanocubes at the air—water interface. Nanomaterials. 2018;8:739.
  • Chen K-Y, Chen Y-W. Preparation of barium titanate ultrafine particles from rutile titania by a hydrothermal conversion. Powder Technol. 2004;141:69.
  • Liu Z, Suenaga K, Wang Z, et al. Identification of active atomic defects in a monolayered tungsten disulphide nanoribbon. Nat Comm. 2011;2:213.
  • Du H, Jia C-L, Mayer J. Local crystallographic shear structures in a [201] extended mixed dislocations of SrTiO3 unraveled by atomic-scale imaging using transmission electron microscopy and spectroscopy. Faraday Discuss. 2019;213:245–258.
  • Egoavil R, Hühn S, Jubgbauer M, et al. Phase problem in the B-site ordering of La2CoMnO6: impact on structure and magnetism. Nanoscale. 2015;7:9835–9843.
  • Xiao CJ, Jin CQ, Wang XH. Crystal structure of dense nanocrystalline BaTiO3 ceramics. Mater Chem Phys. 2008;111:209–212.
  • Liu X, Liebermann RC. X-ray powder diffraction study of CaTiO3 perovskite at high temperatures. Phys Chem Miner. 1993;20: 171–175.
  • Lin J, Hu J, Qiu C, et al. In situ hydrothermal etching fabrication of CaTiO3 on TiO2 nanosheets with heterojunction effects to enhance CO2 adsorption and photocatalytic reduction. Catal Sci Technol. 2019;9:336–346.
  • Chen T, Bao L, Zheng Y, et al. Hydrothermal synthesis of perovskite CaTiO3 tetragonal microrods with vertical V-type holes along the [010] direction. CrystEngComm. 2019;21:4763–4770.