AMP 08 November-December 2023

ADVANCED MATERIALS & PROCESSES | NOVEMBER/DECEMBER 2023 28 For more information: Surojit Gupta, professor, Mechanical Engineering Department, University of North Dakota, 243 Centennial Drive Stop 8359, Grand Forks, ND 58202, 701.777.6489, surojit. gupta@und.edu. References 1. S.E. Kesler and A.F. Simon, Mineral Resources, Economics and the Environment, Cambridge University Press, 2015. 2. E.H. Oelkers and E. Valsami-Jones, Phosphate Mineral Reactivity and Global Sustainability, Elements, 4, p 83-87, 2008. 3. S. Daneshgar, et al., The Potential Phosphorus Crisis: Resource Conservation and Possible Escape Technologies: A Review, Resources, 7, p 37, 2018. 4. T. Michigami and K. Ozono, Roles of Phosphate in Skeleton, Front. Endocrinol., 10, p 180, 2019. 5. L. Cisse and T. Mrabet, World Phosphate Production: Overview and Prospects, Phosphorus Research Bulletin, 15, p 21-25, 2004. 6. W.-J. Zhang, Structure and Performance of LiFePO4 Cathode Materials: A Review, Journal of Power Sources, 196, p 2962-2970, 2011. 7. H. Huang, S.-C. Yin, and L.F. Nazar, Approaching Theoretical Capacity of LiFePO4 at Room Temperature at High Rates, Electrochem. Solid-State Lett., 4, p A170, 2001. 8. X. Han, et al., Promise and Challenge of Phosphorus in Science, Technology, and Application, Adv Funct Materials, 28, p 1803471, 2018. 9. J.S. Al-Sanabani, A.A. Madfa, and F.A. Al-Sanabani, Application of Calcium Phosphate Materials in Dentistry, International Journal of Biomaterials, 2013, p 1-12, 2013. 10. R.Z. LeGeros, et al., Biphasic Calcium Phosphate Bioceramics: Preparation, Properties and Applications, Journal of Materials Science: Materials in Medicine, 14, p 201-209, 2003. 11. S.M. Barinov, Calcium Phosphatebased Ceramic and Composite Materials for Medicine, Russ. Chem. Rev., 79, p 1329, 2010. 12. P. Emsbo, et al., Rare Earth Elements in Sedimentary Phosphate Deposits: Solution to the Global REE Crisis?, Gondwana Research, 27, p 776785, 2015. 13. S. Wu, et al., Recovery of Rare Earth Elements from Phosphate Rock by Hydrometallurgical Processes – A Critical Review, Chemical Engineering Journal, 335, p 774-800, 2018. 14. M.R. Rafiuddin, et al., Review of Rare-Earth Phosphate Materials for Nuclear Waste Sequestration Applications, ACS Omega, 7, p 3948239490, 2022. 15. H. Qiao, et al., A High-entropy Phosphate Catalyst for Oxygen Evolution Reaction, Nano Energy, 86, p 106029, 2021. 16. S. Akrami, et al., High-entropy Ceramics: Review of Principles, Production and Applications, Materials Science and Engineering: R: Reports, 146, p 100644, 2021. 17. D. Weng, et al., Corrosion and Protection Characteristics of Zinc and Manganese Phosphate Coatings, Surface and Coatings Technology, 88, p 147-156, 1997. 18. C.-M. Wang, H.-C. Liau, and W.-T. Tsai, Effects of Temperature and Applied Potential on the Microstructure and Electrochemical Behavior of Manganese Phosphate Coating, Surface and Coatings Technology, 201, p 29943001, 2006. 19. L.C. Graton and W.T. Schaller, ART. XIX.–Purpurite, A New Mineral, American Journal of Science (1880-1910), 20, p 146, 1905. 20. L.M. Lyalina, E.A. Selivanova, and F. Hatert, Nomenclature of the Triphylite Group of Minerals, European Journal of Mineralogy, 35, p 427-437, 2023. 21. Purpurite, https://mindat.org/min3311.html. 22. Z. Chen, et al., MnPO4-Coated Li(Ni0.4Co0.2Mn0.4)O2 for Lithium(-Ion) Batteries with Outstanding Cycling Stability and Enhanced Lithiation Kinetics, Advanced Energy Materials, 8, p 1801573, 2018. 23. L.S. Ivashkevich, A.S. Lyakhov, and A.F. Selevick, Preparation and Structure of the Yttrium Phosphate Dihydrated, Phosphorus Res. Bull., 28, p 45-50, 2013. 24. M.R. Rafiuddin, C. Tyagi, and M.A. Haq, Synthesis and Structural Investigation of Churchite-type REPO4·2H2O (RE = Y, Gd, Dy) Nano- crystals, Journal of Solid State Chemistry, 311, p 123150, 2022. 25. M.R. Rafiuddin and A.P. Grosvenor, A Structural Investigation of Hydrous and Anhydrous Rare-Earth Phosphates, Inorg. Chem., 55, p 9685-9695, 2016. 26. Variscite, https://mindat.org/min4156.html. 27. Wavellite https://mindat.org/min4250.html. 28. U. Kolitsch and A. Pring, Crystal Chemistry of the Crandallite, Beudantite and Alunite Groups: A Review and Evaluation of the Suitability as Storage Materials for Toxic Metals, Journal of Mineralogical and Petrological Sciences, 96(2), p 67-78, 2001. 29. D. Behal, et al., The First Study of Antiferromagnetic Eosphoritechildrenite Series (Mn1− xFex) AlP (OH) 2H2O (x = 0.5),” Journal of Magnetism and Magnetic Materials, 428, p 17-27, 2017. 30. R.K. Rastsvetaeva, N.V. Chukanov, and I.A. Verin, Crystal Structure of Roscherite, Dokl Chem, 403, p 160-163, 2005, doi.org/10.1007/s10631-005-0061-y.

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