4.3 Article

Probing configurational disorder in ZnGeN2 using cluster-based Monte Carlo

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PHYSICAL REVIEW MATERIALS
卷 5, 期 2, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevMaterials.5.024604

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  1. U.S. Department of Energy (DOE) [DE-AC36-08GO28308]
  2. Alliance for Sustainable Energy, LLC
  3. Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division
  4. Energy Frontier Research Center Center for Next Generation of Materials Design
  5. Office of Energy Efficiency and Renewable Energy

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ZnGeN2 is a semiconductor material with lattice constant comparable to GaN and tunable band gap, making it suitable for integration in optoelectronic devices. This study investigates the effects of cation ordering and disordering in ZnGeN2 on electronic structure, and explores the potential applications of both ordered and disordered forms in light-emitting diodes and other emitters.
ZnGeN2 is sought as a semiconductor with comparable lattice constant to GaN and tunable band gap for integration in optoelectronic devices. Configurational disorder on the cation sublattice of ZnGeN2 can strongly modify the electronic structure compared to the ordered material, and both ordered and disordered forms of ZnGeN2 are candidates for light-emitting diodes and other emitters. The nonisovalent character of the disordered species (Zn2+ and Ge4+) subjects the cation ordering to strong short-range order effects. To model these effects, we use Monte Carlo (MC) simulations utilizing a cluster expansion to approximate formation enthalpy. Representative disordered configurations in 1024-atom supercells are relaxed in density functional theory calculations. From the MC structures, we extract a short-range order parameter (the N-cation coordination motif), and two long-range order parameters (Bragg-Williams and stretching parameters), and examine their correlations. We perform a thermodynamic integration to determine the mixing entropy and free energy. ZnGeN2 exhibits a first-order phase transition with pronounced discontinuities in enthalpy and entropy, as well as in the structural order parameters. We discuss the relationship between the effective temperature used in the MC simulation and the growth temperatures in experiment in relation to the crossover from the nonequilibrium to the equilibrium growth regime. This work expands on current models of site disorder in ZnGeN2 and provides atomic structure models with a systematic variation of the degree of cation disorder.

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