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Department of Physics

Naresuan University

Aj. Thanya Udeye

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1Improved Dielectric, Magnetic, and Multiferroic Properties of (Bi 0.5 Na 0.5) 0.7 La 0.3 (Ti 0.7 Fe 0.3) O 3 Ceramics Synthesis by the Solid-State Combustion Technique 20240Q2N/A
2Influence of Nb5+ Substitution on the Phase Formation, Microstructure and Electrical Properties of SBNLT Ceramics Synthesized via the Solid-State Combustion Technique 20230Q3Q4
3Crystal Structure, Microstructure and Electrical Properties of (Ba0. 97Ca0. 03)(Ti0. 94-xMnxSn0. 06) O3 Ceramics Synthesized by the Solid State Combustion Technique 20220Q4Q4
4Phase evolution, microstructure and electrical response of KNNT ceramics with Li+ substitution and doping 20220Q4Q1
5Phase Evolution, Microstructure and Electrical Behavior of (Ba0. 97Ca0. 03)(Ti0. 94-x/2Sn0. 06-x/2Wx) O3 Ceramics Synthesized via the Solid-State Combustion Technique 20220Q4Q4
6Phase Formation, Microstructure, Electric and Magnetic Properties of NiO Doping in (Ba0.85Ca0.15)(Ti0.90Zr0.10)O3 Ceramics 20220Q4Q4
7Effect of BFCO Doping on Phase Structure, Microstructure, Electric and Magnetic Properties of BNKLT Ceramics Prepared by the Combustion Method 20211Q3Q3
8The influences of Cs+ substitution and direct doping on the phase evolution, microstructure and electrical properties of KNNT ceramics 20210Q4Q1
9Effect of Firing Conditions on Phase Formation, Microstructure, and Electrical Properties of (K 0.5 Na 0.5)(Nb 0.7 Ta 0.3) O 3 Ceramics Synthesized by Solid-State Combustion Method 20205Q2Q2
10Effect of the firing temperatures on the phase formation, microstructure and electrical properties of BaTi0. 91 Sn0. 09O3 ceramics synthesized via the solid state combustion method 20192Q3Q3
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