Subsolidus Phase Relationships in the ZnO–In2O3–SnO2 System
نویسندگان
چکیده
The subsolidus phase relationships in the ZnO–InO1.5–SnO2 system were investigated at 12751C using X-ray diffraction. Each of the end members of the ternary diagram is a transparent conducting oxide. There are two substantial solid solutions in the ternary phase space, the bixbyite solid solution In2 2xZnxSnxO3 (x5 0–0.40), and the indium substituted zinc stannate spinel, Zn(2 x)Sn(1 x)In2xO4 (x5 0–0.45). The bixbyite solid solution is an outstanding TCO, whereas the spinel is only moderately conducting. Along the ZnO–InO1.5 binary, there is a series of transparent conducting homologous compounds (ZnO)k . In2O3 (where k5 3, 4, 5, 6, 7, 9, 11). Within ternary phase space, these homologous compounds were found to exhibit negligible Sn solubility, and were always found to be compatible with the spinel. Equilibrium was difficult to achieve in the phase space between the homologous series compounds and the spinel, owing to sluggish kinetics. A procedure involving mixtures of prereacted spinel and the Zn11In2O14 (k5 11) compound was developed, which allowed for more rapid approach to thermodynamic equilibrium, thereby allowing for the establishment of phase relationships near the ZnO corner of the phase diagram.
منابع مشابه
Phase relations , transparency and conductivity in Ga 2 O 3 – SnO 2 – ZnO
Subsolidus phase relationships in the Ga2O3–SnO2–ZnO system were determined at 1250 ◦C using solid state synthesis and X-ray powder diffraction. The two spinels, Zn2SnO4 and ZnGa2O4, formed a complete solid solution. The optical band gap of the spinel varied with composition from 3.6 eV (Zn2SnO4) to 4.7 eV (ZnGa2O4). All samples were white and insulating except those containing Ga-doped ZnO. Th...
متن کاملThe Effects of Nano In2O3 and ZnO on the CO Gas Detection of the SnO2 Sensor
The pellet-type SnO2 sensor was synthesized by the solid state method and the effects of additives such as nano ZnO (1-12 mol %) and nano In2O3 (1-10 mol %) on the CO gas sensitivity of sensor were investigated. The optimum sintering temperature was chosen 800°C because of the porosity content of the samples. The phase analysis and microstructure of the samples were studied by x-ray diffraction...
متن کاملTransparent Conducting Oxides in the ZnO-In2O3-SnO2 System
Transparent Conducting Oxides in the ZnO-In2O3-SnO2 System Cathleen A. Hoel, Thomas O. Mason, Jean-Franc-ois Gaillard, and Kenneth R. Poeppelmeier* Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208-3113, Department ofMaterials Science andEngineering, NorthwesternUniversity, 2220CampusDrive, Evanston, Illinois 60208-3108, and Department of Civil and E...
متن کاملConductivity and Transparency of ZnO/SnO2-Cosubstituted In2O3
In2O3 exhibits a dramatic increase in solubility of SnO2 and ZnO when they are cosubstituted into In2O3. The resultant material, In2-2xSnxZnxO3-δ with x ) 0-0.4, displays the same order of magnitude conductivity and transparency compared with bulk ITO (tindoped indium oxide). Rapid quenching of In2-2xSnxZnxO3-δ raises the conductivity and widens the optical bandgap while lowering the optical tr...
متن کاملA new transparent conducting oxide in the Ga2O3–In2O3–SnO2 system
A new transparent conducting oxide ~TCO!, which can be expressed as Ga32xIn51xSn2O16; 0.2 <x<1.6, has been identified. The equilibrium phase relationships of this new material with respect to three other TCOs in Ga2O3–In2O3–SnO2 are reported. The optical properties of this phase are slightly superior to Sn-doped indium oxide ~ITO! and depend on composition. A room-temperature conductivity of 37...
متن کامل