Phase Formation, Microstructure and Permeability of Fe-Deficient Ni-Cu-Zn Ferrites, (I): Effect of Sintering Temperature
Abstract
:1. Introduction
2. Results
2.1. Powder Properties
2.2. Shrinkage and Densification Behavior
2.3. Microstructure and Element Distribution
2.4. Phase Formation
2.5. Thermal Analysis
2.6. Magnetic Permeability
3. Discussion
- (I)
- The ferrites exhibit normal grain growth. Some remaining inter-crystalline porosity is reduced with increasing Ts. The stoichiometric ferrite (z = 0) is single-phase spinel, and the Fe-deficient samples (z > 0) contain a small amount of tenorite CuO evenly distributed at the triple points between ferrite grains.
- (II)
- At a critical temperature, for example, at Ts = 1050 °C for z = 0, Ts = 1000 °C for z = 0.02, and Ts = 1050 °C for z = 0.06, intra-crystalline porosity starts to appear within the ferrite grains. Regular grain growth still dominates.
- (III)
- At a higher sintering temperature, i.e., at Ts = 1150 °C for z = 0, Ts = 1050 °C for z = 0.02, and Ts = 1100 °C for z = 0.06, a CuO/Cu2O liquid phase appears, forming a network along the grain boundaries and triggering exaggerated growth of the ferrite grains.
4. Materials and Methods
5. Conclusions
- With increasing Fe-deficiency z, the temperature of the maximum shrinkage rate is shifted from T = 1000 °C for z = 0 towards T < 900 °C for z = 0.02. Firing at 900 °C gives dense samples for Fe-deficient ferrites (z > 0) only.
- Stoichiometric ferrites exhibit regular grain growth until, at 1150 °C, exaggerated grain growth sets in owing to the formation of a Cu-oxide liquid phase.
- Fe-deficient ferrites consist of ferrite grains and a CuO second phase distributed at the triple points. At sintering temperatures of about Ts > 1050 °C, CuO is reduced to Cu2O and the formation of a eutectic triggers exaggerated ferrite grain growth. These ferrites with large grains exhibit reduced permeability because (i) non-magnetic pores and Cu oxide grain boundary phases reduce the saturation magnetization and permeability and (ii) pores within ferrite grains and the grain boundary phase act as pinning centers for domain walls, and thus also reduce the permeability.
- The formation of intra-crystalline porosity sets in already at intermediate sintering temperatures in regularly grown ferrite grains, leading to a reduction in permeability.
- Sintering protocols of Fe-deficient Ni-Cu-Zn ferrites require optimization of a delicate balance of inter- and intra-crystalline porosity on one hand, and concentration and chemistry of Cu oxide second phases at triple points and grain boundaries on the other hand, to tailor a maximum permeability performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Priese, C.; Töpfer, J. Phase Formation, Microstructure and Permeability of Fe-Deficient Ni-Cu-Zn Ferrites, (I): Effect of Sintering Temperature. Magnetochemistry 2021, 7, 118. https://doi.org/10.3390/magnetochemistry7080118
Priese C, Töpfer J. Phase Formation, Microstructure and Permeability of Fe-Deficient Ni-Cu-Zn Ferrites, (I): Effect of Sintering Temperature. Magnetochemistry. 2021; 7(8):118. https://doi.org/10.3390/magnetochemistry7080118
Chicago/Turabian StylePriese, Christoph, and Jörg Töpfer. 2021. "Phase Formation, Microstructure and Permeability of Fe-Deficient Ni-Cu-Zn Ferrites, (I): Effect of Sintering Temperature" Magnetochemistry 7, no. 8: 118. https://doi.org/10.3390/magnetochemistry7080118
APA StylePriese, C., & Töpfer, J. (2021). Phase Formation, Microstructure and Permeability of Fe-Deficient Ni-Cu-Zn Ferrites, (I): Effect of Sintering Temperature. Magnetochemistry, 7(8), 118. https://doi.org/10.3390/magnetochemistry7080118