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氯盐共沉淀法制备钇铝石榴石(YAG)纳米粉体和透明陶瓷的研究
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作者 陶奕行 覃显鹏 +2 位作者 周国红 胡松 王正娟 《陶瓷学报》 CAS 北大核心 2024年第4期767-774,共8页
以商业氯化铝和氯化钇为原料,采用共沉淀法合成了YAG纳米粉体。通过高温真空烧结制备了YAG透明陶瓷。采用热重—差热(TG-DTA)、傅立叶红外(FT-IR)、X射线衍射(XRD)等手段研究了氯盐浓度、分散剂PEG-6000浓度对粉体物相、粒径、晶粒尺寸... 以商业氯化铝和氯化钇为原料,采用共沉淀法合成了YAG纳米粉体。通过高温真空烧结制备了YAG透明陶瓷。采用热重—差热(TG-DTA)、傅立叶红外(FT-IR)、X射线衍射(XRD)等手段研究了氯盐浓度、分散剂PEG-6000浓度对粉体物相、粒径、晶粒尺寸的影响和变化规律。结果表明:以0.25 mol·L^(-1)的AlCl_(3)·6H_(2)O、0.15 mol·L^(-1)的YCl_(3)·6H_(2)O的混合溶液为反应初始溶液,以1.0 mol·L^(-1)的NH_(4)HCO_(3)为沉淀剂,以20 g·L^(-1)的PEG-6000为分散剂,采用反滴法制备的前驱体经过1100℃保温6 h煅烧得到的YAG粉体的性能最优,粉体平均粒径为66.0 nm,且粉体呈现出较好的分散状态;以该YAG纳米粉体制备的陶瓷(厚1 mm)双面抛光后的直线透过率最高为45.0%@400 nm及52.8%@1100 nm,与理论透过率有一定的差距;显微结构观察发现晶界气孔较多,影响了光线的直线传输导致了透过率不高,在今后的工作中还需要对制备工艺进行优化。 展开更多
关键词 透明陶瓷 钇铝石榴石 共沉淀法 氯盐
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Enhancement of Piezoelectric Properties in CaBi_(4)Ti_(4)O_(15)-based Ceramics through Bi^(3+) Self-doping Strategy
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作者 ZHOU Yangyang ZHANG Yanyan +4 位作者 YU Ziyi FU Zhengqian XU Fangfang LIANG Ruihong ZHOU Zhiyong 《无机材料学报》 北大核心 2025年第6期719-728,共10页
High-temperature piezoelectric vibration sensors are the preferred choice for structural health monitoring in harsh environments such as high temperatures and complex vibrations.Bismuth layer-structured CaBi_(4)Ti_(4)... High-temperature piezoelectric vibration sensors are the preferred choice for structural health monitoring in harsh environments such as high temperatures and complex vibrations.Bismuth layer-structured CaBi_(4)Ti_(4)O_(15)(CBT)high-temperature piezoelectric ceramics,with high Curie temperature(TC),are the key components for piezoelectric vibration sensors operating at temperatures exceeding 500℃.However,their low piezoelectric coefficient(d_(33))greatly limits their high-temperature applications.In this work,a novel Bi^(3+)self-doping strategy was employed to enhance the piezoelectric performance of CBT ceramics.The enhancement is attributed to an increase in the number of grain boundaries,providing more sites for space charge accumulation and promoting formation of space charge polarization.Furthermore,given that space charge polarization predominantly occurs at low frequencies,dielectric temperature spectra at different frequencies were used to elucidate the mechanism by which space charge polarization enhances piezoelectric properties of CBT ceramics.Excellent overall performance was achieved for the CBT-based high-temperature piezoelectric ceramics.Among them,TC reached 778℃,d_(33) increased by more than 30%,reaching 20.1 pC/N,and the electrical resistivity improved by one order of magnitude(reaching 6.33×10^(6)Ω·cm at 500℃).These advancements provide a key functional material with excellent performance for practical applications of piezoelectric vibration sensors at 500℃and above. 展开更多
关键词 high-temperature piezoelectric ceramic bismuth layer structure SELF-DOPING space charge polarization oxygen vacancy
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Predicting the Degradability of Bioceramics through a DFT-based Descriptor
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作者 CHEN Mengjie WANG Qianqian +1 位作者 WU Chengtie HUANG Jian 《无机材料学报》 SCIE EI CAS CSCD 北大核心 2024年第10期1175-1181,I0007-I0009,共10页
Bioceramics have attracted extensive attention for bone defect repair due to their excellent bioactivity and degradability.However,challenges remain in matching the rate between bioceramic degradation and new bone for... Bioceramics have attracted extensive attention for bone defect repair due to their excellent bioactivity and degradability.However,challenges remain in matching the rate between bioceramic degradation and new bone formation,necessitating a deeper understanding of their degradation properties.In this study,density functional theory(DFT)calculations was employed to explore the structural and electronic characteristics of silicate bioceramics.These findings reveal a linear correlation between the maximum isosurface value of the valence band maximum(VBM_(Fmax))and the degradability of silicate bioceramics.This correlation was subsequently validated through degradation experiments.Furthermore,the investigation on phosphate bioceramics demonstrates the potential of this descriptor in predicting the degradability of a broader range of bioceramics.This discovery offers valuable insights into the degradation mechanism of bioceramics and holds promise for accelerating the design and development of bioceramics with controllable degradation. 展开更多
关键词 BIOCERAMICS SILICATE PHOSPHATE first PRINCIPLES degradation
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