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Updated: Aug 21, 2026

Methods of Ex Situ and In Situ Investigations of Structural Transformations: The Case of Crystallization of Metallic Glasses
Published on: June 7, 2018
Uncovering the Phase and Surface Stability of New Aluminoferrite C4AM (M = Sc-Zn): Ab Initio Calculations
Jieshuo Wan1, Zhongyong Zhang1, Bin Liu1
1State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology, Wuhan, China.
Abstract:
Securing heavy metals within cement clinker phases is a sustainable strategy for solid waste upcycling, yet the atomic-scale mechanisms governing the stability and surface properties of these phases remain elusive. This study systematically investigates the phase stability and surface properties of transition metal-bearing tetracalcium aluminoferrite solid solutions Ca2AlMO5 (C4AM, M = Sc-Zn) using DFT + U calculations. Electronic strong correlation proves essential for correctly describing the insulating behavior and spin states of these minerals. Notably, a spin-state transition of Fe3+ and Co3+ in the octahedral field induces lattice contraction and reverses the energetic stability between I-type and P-type unit cells. Thermodynamic analysis reveals that while all C4AM phases possess negative formation energies, only Cr, Mn, Fe, Ni, and Co are absolutely stable against decomposition into their respective binary oxides. Unstable systems exemplified by Cu and Zn are destabilized by substantial antibonding orbital occupancy at the EF. Furthermore, Mn and Cr exhibit anomalous surface anisotropy, preferring cleavage along the (110) plane over the (001) plane to release Jahn-Teller strain. These findings provide critical theoretical insights for the long-term sequestration of heavy metals in cementitious materials.
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