One step rapid synthesis of mesoporous high surface area Sn1-xSbxO2: Electrochemical and scanning tunneling spectroscopic studies

2018 
Abstract High surface area nanoparticles of antimony doped tin oxide are synthesized for the first time by one step solution combustion method using tin oxalate and antimony chloride as precursors. The synthesis method is rapid and gives particles of sizes 9–13 nm. The material has a specific surface area of 84 m 2 /g as estimated by Brunaure-Emmett-Teller (BET) model. The structural properties, surface morphologies, electrical and electrochemical properties are studied as a function of the dopant concentration. Effect of dopant concentration on X-ray diffraction (XRD) patterns shows some noticeable changes in particle size. Solid state UV spectroscopy demonstrates that due to the antimony doping, the band gap of SnO 2 decreases significantly. Scanning tunneling spectroscopy (STS) and Hall Effect measurement are employed to characterize the electrical properties. The comparative study of Sn 1-x Sb x O 2 (0.01 ≤ x ≤ 0.05) indicates that the composition of Sn 0.95 Sb 0.05 O 2 has the lowest resistance with the highest carrier concentration. Electrochemical properties of the material were analyzed by cyclic voltammetry in both acidic and neutral media showing the Sn 0.95 Sb 0.05 O 2 with high electron transfer properties.
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