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Updated: Jul 25, 2025

Chemical Synthesis of Porous Barium Titanate Thin Film and Thermal Stabilization of Ferroelectric Phase by Porosity-Induced Strain
Published on: March 27, 2018
Dongcai Zhang1, Yaodong Yang1, Wei-Feng Rao1
1Faculty of Mechanical Engineering, Shandong Institute of Mechanical Design and Research, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China.
This study focused on improving the 3D printing of barium titanate ceramics using digital light processing (DLP). The researchers optimized key steps like slurry composition, heating rates during heat treatment, and poling conditions. They found that a slurry with 75% powder content and specific heating rates led to better structural integrity and performance. The printed parts achieved a high piezoelectric constant of 211 pC/N. The devices were tested as force and magnetic sensors, showing that the optimized process can produce functional ceramic components. The results suggest that these methods can be applied to other piezoelectric materials for sensor applications.
Area of Science:
Background:
3D printing of piezoelectric ceramics is a growing field with potential for custom sensor fabrication. Prior research has shown that digital light processing (DLP) can produce complex ceramic structures. However, no prior work had resolved the precise parameter settings needed for high-performance barium titanate devices. Existing methods often result in inconsistent material properties due to unoptimized printing and post-processing conditions. The lack of standardized protocols for ceramic slurry composition and heat treatment remains a limitation. This gap motivated the current investigation into parameter optimization for DLP-based ceramic printing. Researchers have not yet determined the ideal powder content for stable printing and high piezoelectric output. The need for reproducible and scalable manufacturing methods drives this study.
Purpose Of The Study:
This study aimed to optimize the DLP printing process for barium titanate ceramics. The specific problem addressed is the variability in printed part performance due to uncontrolled process parameters. The motivation stems from the need for reliable and high-quality piezoelectric devices. Previous approaches lacked systematic evaluation of slurry composition and heat treatment profiles. The researchers sought to identify optimal conditions for ceramic slurry formulation. They also aimed to determine the best heating rates for degreasing, carbon removal, and sintering. The study focused on achieving a high piezoelectric constant through controlled poling conditions. The ultimate goal was to produce functional sensors with consistent performance.
Main Methods:
The researchers used a DLP 3D printing system to fabricate barium titanate samples. They prepared a ceramic slurry with 75 wt% powder content for printing. The printed green bodies underwent a controlled heat treatment process. Degreasing was performed at a heating rate of 4 °C/min. Carbon removal was also carried out at 4 °C/min. Sintering was conducted at a slower rate of 2 °C/min. The samples were then polarized using a poling field of 10 kV/cm. Poling time and temperature were set at 50 min and 60 °C, respectively. The printed parts were tested for piezoelectric performance and sensor functionality.
Main Results:
The optimized process produced barium titanate devices with a piezoelectric constant of 211 pC/N. The 75 wt% powder content in the slurry ensured good printability and structural integrity. The degreasing and carbon-removing steps at 4 °C/min prevented cracking and deformation. A slower sintering rate of 2 °C/min improved densification and microstructure. The poling conditions of 10 kV/cm, 50 min, and 60 °C yielded strong polarization. The resulting parts demonstrated high sensitivity as force sensors. They also showed reliable performance as magnetic sensors. The study confirmed the feasibility of DLP for producing functional piezoelectric ceramics.
Conclusions:
The study demonstrated that DLP can be used to manufacture high-performance barium titanate ceramics. The optimized parameters led to a piezoelectric constant of 211 pC/N. The 75 wt% powder content in the slurry was essential for stable printing. The heating rates during degreasing and carbon removal were critical for structural integrity. A slower sintering rate improved the final microstructure and mechanical properties. The poling conditions significantly influenced the piezoelectric output. The researchers validated the use of the printed parts as functional sensors. The findings suggest that the optimized process can be applied to other piezoelectric materials.
The study achieved a piezoelectric constant of 211 pC/N using optimized printing and poling conditions.
A slurry with 75 wt% barium titanate powder content was used for DLP printing.
A slower rate of 2 °C/min improved densification and microstructure of the printed parts.
A poling field of 10 kV/cm was used to align the ceramic domains and enhance piezoelectric performance.
The parts were tested as force and magnetic sensors to confirm their practical application.
The researchers propose that the method can be adapted for other piezoelectric materials.