Lead-free perovskite ceramics, which have excellent energy storage capabilities, are attracting attention owing to their high power density and rapid charge-discharge speed. Given that the energy-storage properties of perovskite ceramic capacitors are significantly improved by doping with various elements, modifying their chemical compositions is a fundamental strategy. This study investigated the effect of Zn doping on the microstructure and energy storage performance of potassium sodium niobate (KNN)-based ceramics. Two types of powders and their corresponding ceramics with compositions of (1-x)(K,Na)NbO3-xBi(Ni2/3Ta1/3)O3 (KNN-BNT) and (1-x)(K,Na)NbO3-xBi(Ni1/3Zn1/3Ta1/3) O3 (KNN-BNZT) were prepared via solid-state reactions. The results indicate that Zn doping retards grain growth, resulting in smaller grain sizes in Zn-doped KNN-BNZT than in KNN-BNT ceramics. Moreover, the Zn-doped KNNBNZT ceramics exhibited superior energy storage density and efficiency across all x values. Notably, 0.9KNN-0.1BNZT ceramics demonstrate an energy storage density and efficiency of 0.24 J/cm3 and 96%, respectively. These ceramics also exhibited excellent temperature and frequency stability. This study provides valuable insights into the design of KNNbased ceramic capacitors with enhanced energy storage capabilities through doping strategies.
본 연구에서는 물/에탄올 분리 성능이 우수한 모데나이트 제올라이트 분리막을 제조하였다. 모데나이트 분리막은 다공성 알루미나 지지체 표면에 종결정이 분산된 종결정 수용액을 이용하여 침지코팅한 후 1SiO2:0.05Al2O3: 0.76NaOH:40H2O 의 몰비로 제조된 수열용액을 이용하여 170°C에서 24시간 동안 이차성장 시켰다. 이때 종결정 수용액의 농도가 모데나이트 분리막의 미세구조 및 투과증발성능에 미치는 영향에 대하여 분석하였다. 종결정 수용액의 농도를 0.025, 0.05, 0.1, 0.25, 0.5 wt%로 한 후 합성한 경우, b축으로 성장된 바늘 구조의 모데나이트 결정은 농도가 증가할수록 c축으로 성장하는 것을 확인하였다. c축으로 성장 된 분리막의 물/에탄올 분리성능은 > 10000의 선택도와 0.2 kg/m2h의 투과도 를 나타냈다.
Optimized choice of material for two principally different types of PM components is presented. The first is characterized by high stresses in areas with high stress concentrations (for example synchronizer hubs with very sharp notches, typically <0.25mm in the pre-synchronizer slot and the inner splines). The second type has slightly larger notch radii (small spur gears and sprockets with typically notch radii between 1- 3mm). Diffusion alloyed materials are well suited for sharp notch components. Pre-alloyed materials are also well suited for applications with sharp notches if compressive residual stresses in the notch roots are created by appropriate process control. A free choice of material is available for components with the larger notch radii.