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Updated: Jan 6, 2026

High Temperature Fabrication of Nanostructured Yttria-Stabilized-Zirconia YSZ Scaffolds by In Situ Carbon Templating Xerogels
Published on: April 16, 2017
pH-Mediated Dual-Phase Equilibrium Manipulation and Microstructural Optimization of Y2O3-MgO Composites for Enhanced
Xincheng Cai1, Junjing Duan1, Zhangyi Huang1,2
1College of Physics, Sichuan University, Chengdu 610064, China.
Abstract:
Y2O3-MgO composites are promising mid-infrared transparent materials for extreme environments. However, their optical and mechanical properties are limited by microstructural imperfections, including non-ideal phase fractions, excessive grain growth, and inhomogeneous phase distribution. Conventional coprecipitation struggles to synchronize precipitation of Y3+ and Mg2+ due to their divergent solubility products, leading to compositionally segregated nanopowders and degraded ceramic performance. To address this, we developed a coprecipitation-solvothermal coupling process with precision pH control (9.31-11.56) to manipulate dual-phase equilibria and microstructure. This strategy enhanced supersaturation to accelerate conucleation (via the Gibbs-Thomson effect), enabled complete Mg2+ precipitation at high pH (≥10.84), and achieved atomic-scale precursor homogenization. The pH-optimized nanopowders produced hot-pressed ceramics with a nearly perfect 1:1 phase volume ratio, ultrafine grains (129 ± 4 nm), and high phase homogeneity (αf > 0.9). These yielded excellent properties: 85% maximum transmittance at 6.2 μm (79% at 7 μm, the highest reported values), the broadest cutoff window (1.0-11.5 μm, approaching theoretical limits), and enhanced hardness (11.19 GPa) with toughness (2.43 MPa m1/2). This work introduces pH-mediated phase equilibrium control as a universal paradigm for designing high-performance oxide composites. By resolving fundamental precipitation mismatches, it establishes a general pathway for microstructural optimization in multifunctional ceramic systems.
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