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Effects of excess lead-oxide and bismuth-oxide content on the electrical properties of high-temperature bismuth scandium lead titanate ceramics

机译:过量氧化氧化物和氧化铋含量对高温铋钪铅钛陶瓷电性能的影响

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Aeronautic and aerospace applications require piezoelectric materials that can operate at high temperatures. The air-breathing aeronautic engines can use piezoelectric actuators for active combustion control for fuel modulation to mitigate thermo-acoustic instabilities and/or for gas flow control to improve efficiency. The principal challenge for the insertion of piezoelectric materials is their limitation for upper use temperature and this limitation is due to low Curie temperature and increasing conductivity. We investigated processing, microstructure and property relationship of (1-x)BiScO3-(x)PbTiO3 (BS-PT) composition as a promising high temperature piezoelectric. The effect of excess Pb and Bi and their partitioning in grain boundaries were studied using impedance spectroscopy, ferroelectric, and piezoelectric measurement techniques. Excess Pb addition increased the grain boundary conduction and the grain boundary area (average grain size was 24.8??m, and 1.3??m for compositions with 0at.% and 5at.% excess Pb, respectively) resulting in ceramics with higher losses (tan ??= 0.9 and 1.7 for 0at.% and 5at.% excess Pb at 350 ?°C and at 10kHz) that were not resistive enough to pole. Excess Bi addition increased the resistivity (??grain = 4.1??1010 ??.cm and 19.6 ?? 1010 ??.cm for compositions with 0at.% and 5at.% excess Bi, respectively), improved poling, and increased the piezoelectric coefficient from 137 to 197 pC/N for 5at.% excess Bi addition. In addition, loss tangent decreased more than one order of magnitude at elevated temperatures (<300 ?°C). For all compositions the activation energy of the conducting species was similar (?? 0.35??0.40 eV).
机译:航空航天应用需要在高温下操作的压电材料。空气呼吸的航空发动机可以使用压电致动器进行主动燃烧控制,用于燃料调制,以减轻热声无件和/或气流控制以提高效率。插入压电材料的主要挑战是它们对上使用温度的限制,并且这种限制是由于低居里温度和导电性的增加。我们研究了(1-X)Bisco3-(X)PBTIO3(BS-PT)组合物的加工,微观结构和性能关系,作为有希望的高温压电。使用阻抗光谱,铁电和压电测量技术研究过量Pb和Bi及其在晶界中分配的影响。过量的Pb添加增加了晶粒边界传导和晶粒边界区域(平均晶粒尺寸为24.8μm,和1.3·0μm,分别为0.%和5at。%过量的Pb)导致损失更高的陶瓷( TAN = 0.9和1.7的0at。%和5at。%过量的Pb在350°C和10kHz上),其不足以杆。过量的Bi加入增加电阻率(谷物= 4.1 ?? 1010 ??。cm和19.6 ?? 1010 ??. cm用于0at的组合物。%和5at。%和5at。%多余的Bi),改善抛光,增加压电系数从137到197 pc / n为5at。%过量双加入。此外,在升高的温度下(<300Ω℃),损耗切线在升高的温度下减少了多个数量级。对于所有组合物,导电物种的激活能量相似(?? 0.35 ?? 0.40eV)。

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