5 research outputs found
Large pyroelectric properties at reduced depolarization temperature in A-site nonstoichiometry composition of lead-free 0.94NaxBiyTiO3β0.06BazTiO3 ceramics
Nonstoichiometry lead-free 0.94NaxBiyTiO3β0.06BazTiO3 (NxByTβ0.06BzT) (from x = y = 0.5, z = 1.00 to x = 0.5, y = 0.534, z = 1.02) ceramic compositions were prepared by a conventional solid-state route. XRD shows that the compositions are at a morphotropic phase boundary where rhombohedral and tetragonal phases coexist. The depolarization temperature (Td) can be lowered by modifying x, y and z. The pyroelectric coefficient (p) of nonstoichiometry NxByTβ0.06BzT compositions is greatly increased, compared with stoichiometry NBTβ0.06BT composition, from 3.15 Γ 10β4 C mβ2 Β°Cβ1 at room temperature (RT) and 23.9 Γ 10β4 C mβ2 Β°Cβ1 at Td, and reaches maxima of 6.99 Γ 10β4 C mβ2 Β°Cβ1 at RT and 75.3 Γ 10β4 C mβ2 Β°Cβ1 at Td for x = y = 0.52 and z = 1. The figures of merits, Fi, Fv, and FD, also have been improved from 1.12 Γ 10β10 m vβ1 and 0.021 m2 Cβ1 to 2.50 Γ 10β10 m vβ1, 0.047 m2 Cβ1 and 16.63 Γ 10β6 Paβ1/2, respectively, for N0.52B0.52Tβ0.06BT composition at RT. Furthermore, N0.52B0.52Tβ0.06BT composition shows a huge enhancement in Fi, Fv and FD to 26.9 Γ 10β10 m vβ1, 0.39 Γ 10β10 m2 Cβ1 and 138.7 Γ 10β6 Paβ1/2, respectively, at Td. The same composition also presents FC values which are ~2.58 and ~2.86 (Γ10β9 C cmβ2 Β°Cβ1) at RT at 100 and 1000 (Hz). N0.5B0.534Tβ0.06BT and N0.5B0.534Tβ0.06B1.02T compositions show a large p values at a wide temperature range. The enhanced pyroelectric properties make nonstoichiometry N0.52B0.52Tβ0.06BT composition a promising candidate for pyroelectric and other applications at wide temperatures range
Enhancement of pyroelectric properties of lead-free 0.94 Na 0.5 Bi 0.5 TiO 3-0.06 BaTiO 3 ceramics by La doping
Lead-free 0.94NBT-0.06BT-xLa ceramics at x = 0.0β1.0 (%) were synthesized by a conventional solid-state route. XRD shows that the compositions are at a morphotropic phase boundary where rhombohedral and tetragonal phases coexist. With increasing La3+ content pyroelectric coefficient (p) and figures of merits greatly increase; however, the depolarization temperature (Td) decreases. p is 7.24 Γ 10β4C mβ2 Β°Cβ1 at RT at x = 0.5% and 105.4 Γ 10β4C.mβ2 Β°Cβ1 at Td at x = 0.2%. Fi and Fv show improvements at RT from 1.12 (x = 0%) to 2.65 (x10 β10 m vβ1) (x = 0.5%) and from 0.021 to 0.048 (m2.Cβ1) respectively. Fi and Fv show a huge increase to 37.6 Γ 10β10 m vβ1 and 0.56 m2 Cβ1 respectively at Td at x = 0.2%. FC shows values of 2.10, 2.89, and 2.98 (x10β9C cmβ2 Β°Cβ1) at RT at 33, 100 and 1000 (Hz) respectively. Giant pyroelectric properties make NBT-0.06BT-xLa at x = 0.2% and 0.5% promising materials for many pyroelectric application
The effects of Ba2+ content on depolarization temperature and pyroelectric properties of lead-free 0.94Na0.5Bi0.5TiO3-0.06Ba1+xTiO3 ceramics
Lead-free 0.94Na0.5Bi0.5TiO3β0.06Ba1+xTiO3 (NBTβ0.06B1+xT) ceramics (0.0 β€ x β€ 0.03) were synthesized by a conventional solid-state reaction process. X-ray diffraction shows that the compositions are at the morphotropic phase boundary where rhombohedral and tetragonal phase coexist. Grain size slightly changes with the increase of Ba2+ content and reaches the minimum at x = 0.02. The depolarization temperature (Td) decreases with the extra Ba2+content but the lowest Td was obtained at x = 0.01β0.02. The pyroelectric coefficient (p) was measured as a function of Ba2+ content, and increased from 2.90 Γ 10β4 to 3.54 Γ 10β4 C mβ2 Β°Cβ1, and from 55.3 Γ 10β4 to 740.7 Γ 10β4 C mβ2 Β°Cβ1 for x = 0.00 and 0.02 at RT, and depolarization temperature (Td) respectively. The pyroelectric coefficient (p) shows a large increase with rising the temperature and reaches the maximum value at the depolarization temperature (Td). The figures of merits of Fi, Fv and FD have all been improved with the addition of extra barium. These improved pyroelectric properties indicate that NBTβ0.06B1+xT is a promising material for pyroelectric applications or a wide range of temperature
The decrease of depolarization temperature and the improvement of pyroelectric properties by doping Ta in lead-free 0.94Na0.5Bi0.5TiO3-0.06BaTiO3 ceramics
Ta-doped lead-free 0.94NBT-0.06BT-xTa (x=0.0β1.0%) ceramics were synthesized by a conventional solid-state route. XRD shows that the compositions are at a morphotropic phase boundary where rhombohedral and tetragonal phases coexist. The depolarization temperature (Td) shifted to lower temperature with the increase of Ta content. The pyroelectric coefficient (p) of doped ceramics greatly enhanced compared with undoped material and reached a maximum of 7.14Γ10β4 C mβ2 Β°Cβ1 at room temperature (RT) and 146.1Γ10β4 C mβ2 Β°Cβ1 at Td at x=0.2%. The figure of merits, Fi and Fv, also showed a great improvement from 1.12Γ10β10 m vβ1 and 0.021 m2 Cβ1 at x=0.0 to 2.55Γ10β10 m vβ1 and 0.033 m2 Cβ1 at x=0.2% at RT. Furthermore, Fi and Fv show the huge improvement to 52.2Γ10β10 m vβ1 and 0.48Γ10β10 m vβ1 respectively at Td at x=0.2%. FC shows a value between 2.26 and 2.42 Γ10β9 C cmβ2 Β°Cβ1 at RT at x=0.2%. The improved pyroelectric properties make NBT-0.06BT-0.002Ta ceramics a promising infrared detector material
Giant pyroelectric properties in La and Ta co-doped lead-free 0.94Na0.5Bi0.5TiO3-0.06BaTiO3 ceramics
La and Ta co-doped Lead-free 0.94NBT-0.06BT ceramics were synthesized by a conventional solid-state route. The compositions remain at a morphotropic phase boundary. The depolarization temperature (Td) decreased with increasing doping contents. The room temperature (RT) pyroelectric coefficient (p) was highly enhanced compared with undoped material (3.15 Γ 10β4 C mβ2 Β°Cβ1) and reached 12.9 Γ 10β4 C mβ2 Β°Cβ1, whereas, at Td, 58.6 Γ 10β4 C mβ2 Β°Cβ1 could be obtained rather than 23.9 Γ 10β4 C mβ2 Β°Cβ1 for undoped materials. The pyroelectric figure of merits, Fi and Fv, also showed a huge improvement from 1.12 Γ 10β10 m vβ1 and 0.021 m2 Cβ1 of undoped material to 4.61 Γ 10β10 m vβ1 and 0.078 m2 Cβ1 of doped materials at RT, and to 20.94 Γ 10β10 m vβ1 and 0.28 Γ 10β10 m2.Cβ1 at Td. RT FC values are βΌ2.40, 2.46, and 2.57 (Γ10β9 C cmβ2 Β°Cβ1) at frequency 33, 100 and 1000 (Hz) respectively, at La = Ta = 0.2%. The pyroelectric coefficient achieved at RT in this study is almost one order of magnitude higher than PZT materials, furthermore, the figure of merits of the new compositions are comparable with or even better in those of PZT materials and other lead-free ceramics. The improvement in the pyroelectric properties makes La and Ta co-doped NBT-0.06BT ceramics possible materials to replace lead-containing PZT ceramics for infrared detector materials at a wide temperature range