首页> 外文期刊>Sensors and Actuators, A. Physical >Hydrothermal synthesis of lead zirconate titanate (PZT or Pb(Zr_(0.52)Ti_(0.48))O_3) nano-particles using controlled ramping and cooling rates
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Hydrothermal synthesis of lead zirconate titanate (PZT or Pb(Zr_(0.52)Ti_(0.48))O_3) nano-particles using controlled ramping and cooling rates

机译:水热合成钛酸锆钛酸铅(PZT或Pb(Zr_(0.52)Ti_(0.48))O_3)纳米粒子的控制升温和冷却速率

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摘要

Lead zirconate titanate (PZT) nanoparticles with chemical composition Pb(Zr_(0.52)Ti_(0.48))O_3 hold many promising current and future applications, such as PZT ink for 3-D printing or seeds for PZT thick films. One common method is hydrothermal growth, in which temperature, duration, or mineralizer concentrations are optimized to produce PZT nanoparticles with controlled size and distribution. In this paper, we present a modified hydrothermal process to fabricate PZT nanoparticles. The novelty is to employ a high ramping rate (e.g., 20°C/min) as well as a fast cooling rate (e.g., 5°C/min). The former generates abrupt supersaturation to promote burst nucleation of PZT nanoparticles, and the latter provides a controlled termination of crystal growth. As a result, PZT nanoparticles with a size distribution ranging from 200 nm to 800 nm are obtained with good morphology and crystallinity. The chemical composition and crystal structure of the PZT nanoparticles are confirmed through use of energy dispersive X-Ray spectroscopy (EDS) and X-ray diffractometry (XRD). A cubic morphology is also confirmed via SEM images. The hydrothermal process is further modified with excess lead (from 20 wt.% to 80 wt.%) to significantly reduce amorphous phase and agglomeration of the PZT nanoparticles. Finally, an expedited hydrothermal manufacturing process was developed to substantially reduce the fabrication time.
机译:化学组成为Pb(Zr_(0.52)Ti_(0.48))O_3的钛酸锆钛酸铅(PZT)纳米粒子拥有许多有希望的当前和未来应用,例如用于3-D打印的PZT墨水或用于PZT厚膜的种子。一种常见的方法是水热生长,其中对温度,持续时间或矿化剂浓度进行优化,以生产尺寸和分布可控的PZT纳米颗粒。在本文中,我们提出了一种改进的水热工艺来制造PZT纳米颗粒。新颖之处在于采用高的升温速率(例如20℃/ min)以及快速的冷却速率(例如5℃/ min)。前者产生突然的过饱和以促进PZT纳米粒子的爆发形核,而后者则提供了晶体生长的受控终止。结果,获得具有良好的形态和结晶度的尺寸分布在200nm至800nm范围内的PZT纳米颗粒。通过使用能量色散X射线光谱仪(EDS)和X射线衍射仪(XRD)确认了PZT纳米颗粒的化学成分和晶体结构。通过SEM图像也证实了立方形态。用过量的铅(从20 wt。%至80 wt。%)进一步改进水热工艺,以显着减少PZT纳米颗粒的非晶相和团聚。最后,开发了一种快速的水热制造工艺,以大大减少制造时间。

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