Area of research
Electrical and Electronic Engineering · Materials Chemistry
Research interest
Research focused on Ceramic and Dielectric, with related work in Analytical Chemistry (journal), Orthorhombic crystal system, Tetragonal crystal system. Notable publications include 'Low-fired fluoride microwave dielectric ceramics with low dielectric loss', 'Controllable τ f value of barium silicate microwave dielectric ceramics with different Ba/Si ratios', and 'Structure and Microwave Dielectric Behavior of A‐Site‐Doped Sr (1−1.5 x ) Ce x TiO 3 Ceramics System'.
Effect of YF3 on densification behavior and thermal conductivity of AlN ceramics with Y2O3–YF3 additives under reducing atmosphere
Lattice structure analysis and optimised microwave dielectric properties of LiAl1-(Zn0.5Si0.5) O2 solid solutions
Improved sinterability and microwave dielectric properties of [Zn <sub>0.5</sub> Ti <sub>0.5</sub> ] <sup>3+</sup> ‐doped ZnAl <sub>2</sub> O <sub>4</sub> spinel solid solution
Anti-reductive characteristics and dielectric loss mechanisms of Ba2ZnSi2O7 microwave dielectric ceramic
Ultrabroad temperature stability of stuffed tridymite-type BaAl2O4 co-doped by [Zn0.5Ti0.5]3+ with weak ferroelectricity
Low-fired fluoride microwave dielectric ceramics with low dielectric loss
Controllable τ <sub>f</sub> value of barium silicate microwave dielectric ceramics with different Ba/Si ratios
Weak ferroelectricity and low-permittivity microwave dielectric properties of Ba 2 Zn (1+x) Si 2 O (7+x) ceramics
Structure and Microwave Dielectric Behavior of A‐Site‐Doped Sr <sub> (1−1.5 <i>x</i> ) </sub> Ce <sub> <i>x</i> </sub> TiO <sub>3</sub> Ceramics System
Novel high Curie temperature Ba2ZnSi2O7 ferroelectrics with low-permittivity microwave dielectric properties
Phase transition and low-temperature sintering of Zn(Mn1-Al )2O4 ceramics for LTCC applications