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correct typos
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JiQi535 committed Jan 28, 2024
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2 changes: 1 addition & 1 deletion mvl_models/pes/Li0.33La0.56TiO3/mtp.2021.06/README.md
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These MTP potentials were develped for Li1/3La5/9TiO3 (Space group Pm3̄m, No. 221) and published in
These MTP potentials were developed for Li1/3La5/9TiO3 (Space group Pm3̄m, No. 221) and published in

Qi, J., Banerjee, S., Zuo, Y., Chen, C., Zhu, Z., Chandrappa, M. H., ... & Ong, S. P. (2021). Bridging the gap between simulated and experimental ionic conductivities in lithium superionic conductors. Materials Today Physics, 21, 100463. https://doi.org/10.1016/j.mtphys.2021.100463

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2 changes: 1 addition & 1 deletion mvl_models/pes/Li3YCl6/mtp.2021.06/README.md
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These MTP potentials were develped for Li3YCl6 (Space group P3̄m1, No. 164) and published in
These MTP potentials were developed for Li3YCl6 (Space group P3̄m1, No. 164) and published in

Qi, J., Banerjee, S., Zuo, Y., Chen, C., Zhu, Z., Chandrappa, M. H., ... & Ong, S. P. (2021). Bridging the gap between simulated and experimental ionic conductivities in lithium superionic conductors. Materials Today Physics, 21, 100463. https://doi.org/10.1016/j.mtphys.2021.100463

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2 changes: 1 addition & 1 deletion mvl_models/pes/Li7P3S11/mtp.2021.06/README.md
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These MTP potentials were develped for Li7P3S11 (Space group P1̄, No. 2) and published in
These MTP potentials were developed for Li7P3S11 (Space group P1̄, No. 2) and published in

Qi, J., Banerjee, S., Zuo, Y., Chen, C., Zhu, Z., Chandrappa, M. H., ... & Ong, S. P. (2021). Bridging the gap between simulated and experimental ionic conductivities in lithium superionic conductors. Materials Today Physics, 21, 100463. https://doi.org/10.1016/j.mtphys.2021.100463

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2 changes: 1 addition & 1 deletion mvl_models/pes/Na2.25Y0.25Zr0.75Cl6/mtp.2021.02/README.md
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This passive learning MTP potential was develped for Na2.25Y0.25Zr0.75Cl6 (NYZC75) and published in
This passive learning MTP potential was developed for Na2.25Y0.25Zr0.75Cl6 (NYZC75) and published in

Wu, E. A., Banerjee, S., Tang, H., Richardson, P. M., Doux, J. M., Qi, J., ... & Ong, S. P. (2021). A stable cathode-solid electrolyte composite for high-voltage, long-cycle-life solid-state sodium-ion batteries. Nature communications, 12(1), 1-11.

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2 changes: 1 addition & 1 deletion mvl_models/pes/Na2.25Y0.25Zr0.75Cl6/mtp.2022.09/README.md
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This active learning MTP potential was develped for Na2.25Y0.25Zr0.75Cl6 (NYZC75) and published in
This active learning MTP potential was developed for Na2.25Y0.25Zr0.75Cl6 (NYZC75) and published in

Sebti, E., Qi, J., Richardson, P. M., Ridley, P., Wu, E. A., Banerjee, S., ... & Clément, R. (2022). Synthetic control of structure and conduction properties in Na-Y-Zr-Cl solid electrolytes. Journal of Materials Chemistry A.

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2 changes: 1 addition & 1 deletion mvl_models/pes/TiAl/mtp.2023.04/README.md
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These MTP potentials were develped for Ti-Al alloy system in our work of "Machine Learning Moment Tensor Potential for Modelling Dislocation and Fracture in L10-TiAl and D019-Ti3Al Alloys" at https://arxiv.org/abs/2305.11825.
These MTP potentials were developed for Ti-Al alloy system in our work of "Machine Learning Moment Tensor Potential for Modelling Dislocation and Fracture in L10-TiAl and D019-Ti3Al Alloys" at https://arxiv.org/abs/2305.11825.

The elements with respective atom types from 1 to 2 are Ti and Al.

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225 changes: 171 additions & 54 deletions tests/apps/bowsr/test_optimizer.py

Large diffs are not rendered by default.

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