Synthesis of dual-phase face-centered cubic crystal structure in nanocrystalline AlCoCuFeNi high-entropy alloy

Document Type : Research Paper

Authors

Faculty of Materials Science and Engineering, K. N. Toosi University of Technology, No. 7, Pardis St., Mollasadra Av., Vanak Sq., Tehran, Iran

10.22059/jufgnsm.2023.02.12

Abstract

Nearly two decades have passed since the introduction of high entropy alloys, which can be synthesized using solid, liquid, or gas methods. This study focuses on the solid-state method of mechanical alloying to create high entropy alloy AlCoCuFeNi and examines the properties of the material at various stages of synthesis. The solid-state method of mechanical alloying was utilized in this research to synthesize a high entropy alloy, with samples taken at regular intervals of 10, 20, 30, 40, and 50 hours. X-ray diffraction (XRD) was used to characterize the alloys, with further XRD analysis performed to determine crystallite size and lattice strain. In this study, high entropy alloys were successfully synthesized as two-phase solid solutions with a two-phase crystal (FCC) structure. The resulting alloy had a crystallite size of 8.4 nm and a residual strain of 1.7%. Elemental mapping image revealed that after 50 hours of mechanical alloying, all elements in the high entropy alloy were dissolved into each other with nearly identical atomic ratios, a finding confirmed by XRD analysis. The solid solution alloys synthesized in this research exhibited an intriguing phase separation phenomenon at the nano scale. The observation of two phases with different lattice constants highlights the versatility of high entropy alloys and their potential for diverse applications.

Keywords


  1. Ghanbariha M, Farvizi M, Ebadzadeh T, Alizadeh Samiyan A. Effect of ZrO2 particles on the nanomechanical properties and wear behavior of AlCoCrFeNi–ZrO2 high entropy alloy composites. Wear. 2021;484-485:204032.
  2. Ye YF, Wang Q, Lu J, Liu CT, Yang Y. High-entropy alloy: challenges and prospects. Materials Today. 2016;19(6):349-62.
  3. Zhang Y, Zuo TT, Tang Z, Gao MC, Dahmen KA, Liaw PK, Lu ZP. Microstructures and properties of high-entropy alloys. Progress in Materials Science. 2014;61:1-93. Zhang Y, Zuo TT, Tang Z, Gao MC, Dahmen KA, Liaw PK, Lu ZP. Microstructures and properties of high-entropy alloys. Progress in Materials Science. 2014;61:1-93.
  4. Holmström E, Lizárraga R, Linder D, Salmasi A, Wang W, Kaplan B, et al. High entropy alloys: Substituting for cobalt in cutting edge technology. Applied Materials Today. 2018;12:322-9.
  5. Ren B, Liu ZX, Li DM, Shi L, Cai B, Wang MX. Effect of elemental interaction on microstructure of CuCrFeNiMn high entropy alloy system. Journal of Alloys and Compounds. 2010;493(1-2):148-53.
  6. Zhang H, Zhang L, Liu X, Chen Q, Xu Y. Effect of Zr Addition on the Microstructure and Mechanical Properties of CoCrFeNiMn High-Entropy Alloy Synthesized by Spark Plasma Sintering. Entropy (Basel). 2018;20(11):810.
  7. Chikumba S, Rao VV. High entropy alloys: development and applications. InProceedings of the 7th International Conference on Latest Trends in Engineering & Technology (ICLTET’2015) 2015 Nov 26 (pp. 1-5).
  8. Z. Wu, M. C. Troparevsky, Y. F. Gao, J. R. Morris, G. M. Stocks, and H. Bei, “Phase stability, physical properties and strengthening mechanisms of concentrated solid solution alloys,” Curr. Opin. Solid State Mater. Sci., vol. 21, no. 5, pp. 267–284, 2017.
  9. Feng H, Li H-B, Dai J, Han Y, Qu J-D, Jiang Z-H, et al. Why CoCrFeMnNi HEA could not passivate in chloride solution? – A novel strategy to significantly improve corrosion resistance of CoCrFeMnNi HEA by N-alloying. Corrosion Science. 2022;204:110396.
  10. Wang FJ, Zhang Y. Effect of Co addition on crystal structure and mechanical properties of Ti0.5CrFeNiAlCo high entropy alloy. Materials Science and Engineering: A. 2008;496(1-2):214-6.
  11. Manzoni A, Daoud H, Völkl R, Glatzel U, Wanderka N. Phase separation in equiatomic AlCoCrFeNi high-entropy alloy. Ultramicroscopy. 2013;132:212-5.
  12. Qiao JW, Ma SG, Huang EW, Chuang CP, Liaw PK, Zhang Y. Microstructural Characteristics and Mechanical Behaviors of AlCoCrFeNi High-Entropy Alloys at Ambient and Cryogenic Temperatures. Materials Science Forum. 2011;688:419-25.
  13. Zhang Y, Ma SG, Qiao JW. Morphology Transition from Dendrites to Equiaxed Grains for AlCoCrFeNi High-Entropy Alloys by Copper Mold Casting and Bridgman Solidification. Metallurgical and Materials Transactions A. 2011;43(8):2625-30.
  14. Li QH, Yue TM, Guo ZN, Lin X. Microstructure and Corrosion Properties of AlCoCrFeNi High Entropy Alloy Coatings Deposited on AISI 1045 Steel by the Electrospark Process. Metallurgical and Materials Transactions A. 2012;44(4):1767-78.
  15. Shahbazkhan A, Sabet H, Abbasi M. Investigation of bonding strength and hot corrosion behavior of NiCoCrAlSi high entropy alloy applied on IN-738 superalloy by SPS method. Journal of Alloys and Compounds. 2022;911:164997.
  16. Yang F, Wang J, Zhang Y, Wu Z, Zhang Z, Zhao F, et al. Recent progress on the development of high entropy alloys (HEAs) for solid hydrogen storage: A review. International Journal of Hydrogen Energy. 2022;47(21):11236-49.
  17. Ocak BC, Goller G. Investigation the effect of FeNiCoCrMo HEA addition on properties of B4C ceramic prepared by spark plasma sintering. Journal of the European Ceramic Society. 2021;41(13):6290-301.
  18. Peng YB, Zhang W, Mei XL, Wang HJ, Zhang MY, Wang L, et al. Microstructures and mechanical properties of FeCoCrNi-Mo High entropy alloys prepared by spark plasma sintering and vacuum hot-pressed sintering. Materials Today Communications. 2020;24:101009.
  19. Tian L, Fu M, Xiong W. Microstructural Evolution of AlCoCrFeNiSi High-Entropy Alloy Powder during Mechanical Alloying and Its Coating Performance. Materials (Basel). 2018;11(2):320.
  20. Vaidya M, Muralikrishna GM, Murty BS. High-entropy alloys by mechanical alloying: A review. Journal of Materials Research. 2019;34(5):664-86.
  21. Amiri Talischi L, Samadi A. Structural characterization and ordering transformation of mechanically alloyed nanocrystalline Fe-28Al powder. Journal of Ultrafine Grained and Nanostructured Materials. 2016 Dec 1;49(2):112-9.
  22. Shahsavari E, Zamani C, Ahmadi Dermeni H, Hadian AM, Hadian A. Cryomilling-Assisted Synthesis of Nanostructured Silicon. Journal of Ultrafine Grained and Nanostructured Materials. 2020 Dec 28;53(2):158-65.
  23. Haghighat-Shishavan S, Kashani Bozorg F. Nano-Crystalline Mg (2-x) MnxNi Compounds Synthesized by Mechanical Alloying: Microstructure and Electrochemistry. Journal of Ultrafine Grained and Nanostructured Materials. 2014 Jun 1;47(1):43-9.
  24. Maulik O, Kumar D, Kumar S, Fabijanic DM, Kumar V. Structural evolution of spark plasma sintered AlFeCuCrMgx (x = 0, 0.5, 1, 1.7) high entropy alloys. Intermetallics. 2016;77:46-56.
  25. Oleszak D, Antolak-Dudka A, Kulik T. High entropy multicomponent WMoNbZrV alloy processed by mechanical alloying. Materials Letters. 2018;232:160-2.
  26. Enayati MH, Mohamed FA. Application of mechanical alloying/milling for synthesis of nanocrystalline and amorphous materials. International Materials Reviews. 2014;59(7):394-416.
  27. Salemi F, Abbasi MH, Karimzadeh F. Synthesis and thermodynamic analysis of nanostructured CuNiCoZnAl high entropy alloy produced by mechanical alloying. Journal of Alloys and Compounds. 2016;685:278-86.
  28. Chen C-L, Suprianto. Microstructure and mechanical properties of AlCuNiFeCr high entropy alloy coatings by mechanical alloying. Surface and Coatings Technology. 2020;386:125443.
  29. Jain H, Shadangi Y, Shivam V, Chakravarty D, Mukhopadhyay NK, Kumar D. Phase evolution and mechanical properties of non-equiatomic Fe–Mn–Ni–Cr–Al–Si–C high entropy steel. Journal of Alloys and Compounds. 2020;834:155013.
  30. Mirzadeh H, Zomorodian A. Ball milling criteria for producing nano intermetallic compounds. Materials Science and Technology. 2010;26(3):281-4.
  31. Tang Z, Zhang S, Cai R, Zhou Q, Wang H. Designing High Entropy Alloys with Dual fcc and bcc Solid-Solution Phases: Structures and Mechanical Properties. Metallurgical and Materials Transactions A. 2019;50(4):1888-901.
  32. eng Z, Liu N, Zhang SY, Wu PH, Wang XJ. Liquid-phase separation of immiscible CrCuxFeMoyNi high-entropy alloys. Materials Science and Technology. 2017;33(11):1352-9.
  33. Liu K, Nene SS, Frank M, Sinha S, Mishra RS. Extremely high fatigue resistance in an ultrafine grained high entropy alloy. Applied Materials Today. 2019;15:525-30.
  34. Shi P, Ren W, Zheng T, Ren Z, Hou X, Peng J, et al. Enhanced strength-ductility synergy in ultrafine-grained eutectic high-entropy alloys by inheriting microstructural lamellae. Nat Commun. 2019;10(1):489-.
  35. Wang N, Wu B, Wu W, Li J, Ge C, Dong Y, et al. Microstructure and properties of aluminium-high entropy alloy composites fabricated by mechanical alloying and spark plasma sintering. Materials Today Communications. 2020;25:101366.
  36. Munitz A, Kaufman MJ, Chandler JP, Kalaantari H, Abbaschian R. Melt separation phenomena in CoNiCuAlCr high entropy alloy containing silver. Materials Science and Engineering: A. 2013;560:633-42.
  37. Hsu US, Hung UD, Yeh JW, Chen SK, Huang YS, Yang CC. Alloying behavior of iron, gold and silver in AlCoCrCuNi-based equimolar high-entropy alloys. Materials Science and Engineering: A. 2007;460-461:403-8.
  38. Munitz A, Kaufman MJ, Abbaschian R. Liquid phase separation in transition element high entropy alloys. Intermetallics. 2017;86:59-72.
  39. Wu PH, Liu N, Yang W, Zhu ZX, Lu YP, Wang XJ. Microstructure and solidification behavior of multicomponent CoCrCu x FeMoNi high-entropy alloys. Materials Science and Engineering: A. 2015;642:142-9.
  40. Derimow N, Abbaschian R. Solidification microstructures and calculated mixing enthalpies in CoCrCu containing alloys. Materials Today Communications. 2018;15:1-10.
  41. Murty BS, Yeh JW, Ranganathan S. A Brief History of Alloys and the Birth of High-Entropy Alloys. High Entropy Alloys: Elsevier; 2014. p. 1-12.
  42. Liu C, Peng W, Jiang CS, Guo H, Tao J, Deng X, Chen Z. Composition and phase structure dependence of mechanical and magnetic properties for AlCoCuFeNi high entropy alloys. Journal of Materials Science & Technology. 2019;35(6):1175-83.
  43. Chang X, Zeng M, Liu K, Fu L. Phase Engineering of High‐Entropy Alloys. Advanced Materials. 2020;32(14).
  44. He MY, Shen YF, Jia N, Liaw PK. C and N doping in high-entropy alloys: A pathway to achieve desired strength-ductility synergy. Applied Materials Today. 2021;25:101162.
  45. Mayahi R. A theoretical investigation on deformation behavior and phase prediction of CoCrFeNi-based high entropy alloys. Materials Today Communications. 2020;24:101025.
  46. Daryoush S, Mirzadeh H, Ataie A. Advances in the Processing of High-Entropy Alloys by Mechanical Alloying. Advanced Nanomaterials: Springer International Publishing; 2022. p. 531-59.
  47. Martin P, Madrid-Cortes CE, Cáceres C, Araya N, Aguilar C, Cabrera JM. HEAPS: A user-friendly tool for the design and exploration of high-entropy alloys based on semi-empirical parameters. Computer Physics Communications. 2022;278:108398.
  48. Takeuchi A, Inoue A. Classification of bulk metallic glasses by atomic size difference, heat of mixing and period of constituent elements and its application to characterization of the main alloying element. Materials transactions. 2005;46(12):2817-29.
  49. Wang XR, Wang ZQ, He P, Lin TS. The concept, construction and application of mixing enthalpy matrix for high-entropy alloys.
  50. Owen LR, Jones NG. Lattice distortions in high-entropy alloys. Journal of Materials Research. 2018;33(19):2954-69.
  51. Chen C, Yuan S, Chen J, Wang W, Zhang W, Wei R, et al. A Co-free Cr-Fe-Ni-Al-Si high entropy alloy with outstanding corrosion resistance and high hardness fabricated by laser surface melting. Materials Letters. 2022;314:131882.
  52. Du C, Hu L, Pan Q, Chen K, Zhou P, Wang G. Effect of Cu on the strengthening and embrittling of an FeCoNiCr-xCu HEA. Materials Science and Engineering: A. 2022;832:142413.
  53. Zhang P, Xu Z, Yao Z, Liu Y, Lin S, He M, et al. A high-corrosion-resistant high-entropy alloys (HEAs) coatings with single BCC solid solution structure by laser remelting. Materials Letters. 2022;324:132728.
  54. He Q, Yang Y. On Lattice Distortion in High Entropy Alloys. Frontiers in Materials. 2018;5.
  55. Martienssen W. Semiconductors. Springer Handbook of Condensed Matter and Materials Data: Springer Berlin Heidelberg. p. 575-694.
  56. Moazzen P, Toroghinejad MR. Enhancement of mechanical properties of a novel single phase Ni1.5FeCrCu0.5 HEA through cold rolling and subsequent annealing. Materials Science and Engineering: A. 2022;848:143360.