1)  sol-gel method
TiO2纳米粒子
1.
Nanoparticle titania was prepared by sol-gel method and characterized by XRD.
利用XRD等手段对以钛酸四丁酯为原料采用溶胶-凝胶法制备的TiO2纳米粒子的表面特性及其对空气环境中乙醛的光催化降解性能进行了测定。
2)  Co2+-doped TiO2 nanoparticle
Co2+掺杂TiO2纳米粒子
1.
The superoxide anion was produced on the surface of Co2+-doped TiO2 nanoparticles by the photo-induced effect and the characteristics of adsorption and desorption of the superoxide anion on the sur-face of these nanoparticles were studied.
研究了Co2+掺杂TiO2纳米粒子在光信号诱导下产生的超氧阴离子自由基在纳米粒子表面的吸附和解吸特性。
3)  Zn~(2+) doped TiO_2 nanoparticles
Zn2+离子掺杂的TiO2纳米粒子
4)  Ti
Ti
1.
EAM CALCULATION OF FORMATION ENTHALPIES OF Al,Li AND Mg(Ti) INTERMETALLIC COMPOUNDS;
Al-Li-Mg(Ti)合金形成焓的EAM研究
2.
ICP-AES Determination of Mn,Si,Al,Ti,Nb,La in Ultrahigh Strength Steel;
ICP-AES法测定超高强度钢中Mn,Si,Al,Ti,Nb,La杂质元素
3.
Synthesis of the Red Long Afterglow Phosphor Gd_2O_2S∶Eu, Mg, Ti by Microwave Radiation Method and Its Luminescent Properties;
微波法合成红色长余辉发光材料Gd_2O_2S∶Eu,Mg,Ti及其发光特性
5)  Ti+
Ti~+
6)  titanium
Ti
1.
Structure and High Temperature Tribological Behavior of Carbonaceous Mesophases Doped with Metallic Elements-titanium (Ti) and Nickel (Ni);
掺Ti/Ni碳质中间相的结构及其高温摩擦性能
2.
The microstructural evolution of a nickel-base single crystal superalloy with different content of titanium as-cast state and during prolonged aging at 1000℃ was investigated.
研究了不同Ti含量对一种镍基单晶高温合金的铸态组织以及在1000℃长期时效后的组织演化。
3.
The natural corrosion potential,corrosion rate and steady-state polarization curves of Q235B carbon steel,TA2 titanium and navel brass in seawater were measured.
测定了Q235B碳钢、TA2钛和海军黄铜在海水中的自然腐蚀电位、腐蚀速率和稳态极化曲线,测定了不同面积比时电偶对电偶电流的大小、方向,电偶电位以及电偶对阳极和阴极的失重速率,由电偶对不同面积比的数据得到Q235B碳钢被Ti电偶极化的动态极化曲线。
参考词条
补充资料:CaO-TiO2-SiO2 ceramics
分子式:
CAS号:

性质:在CaO-TiO2-SiO2三元系统中以CaSiO3与TiO2或以CaTiSiO5与CaTiO3为基料的陶瓷材料。其结构特点是两种晶相共存,性能受晶相比例影响。配比可在一定范围内调节。主要原料为碳酸钙、二氧化钛、二氧化硅,加入少量改性添加剂,经配料、磨细、混合、成型、烧成等工序获得制品,也可先用碳酸钙和二氧化硅高温下合成硅酸钙,用碳酸钙、二氧化硅、二氧化钛高温下合成钛硅酸钙后再进行配料、烧成等,以确保两晶相共存。主要介电性能为:介电常数80~110,介质损耗角正切值(0.8~2.5)×10-4,介电常数温度系数(-450~+550)×10-6/℃。抗电温度(45~55)kV/mm,电阻率(1011~1012)Ω·cm。主要用作温度补偿型陶瓷电容器瓷料。

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