Microstructures and micromechanical behaviors of high-entropy alloys investigated by synchrotron X-ray and neutron diffraction techniques: A review
Yubo Huang, Ning Xu, Huaile Lu, Yang Ren, Shilei Li, Yandong Wang
Microstructures and micromechanical behaviors of high-entropy alloys investigated by synchrotron X-ray and neutron diffraction techniques: A review
High-entropy alloys (HEAs) possess outstanding features such as corrosion resistance, irradiation resistance, and good mechanical properties. A few HEAs have found applications in the fields of aerospace and defense. Extensive studies on the deformation mechanisms of HEAs can guide microstructure control and toughness design, which is vital for understanding and studying state-of-the-art structural materials. Synchrotron X-ray and neutron diffraction are necessary techniques for materials science research, especially for in situ coupling of physical/chemical fields and for resolving macro/microcrystallographic information on materials. Recently, several researchers have applied synchrotron X-ray and neutron diffraction methods to study the deformation mechanisms, phase transformations, stress behaviors, and in situ processes of HEAs, such as variable-temperature, high-pressure, and hydrogenation processes. In this review, the principles and development of synchrotron X-ray and neutron diffraction are presented, and their applications in the deformation mechanisms of HEAs are discussed. The factors that influence the deformation mechanisms of HEAs are also outlined. This review focuses on the microstructures and micromechanical behaviors during tension/compression or creep/fatigue deformation and the application of synchrotron X-ray and neutron diffraction methods to the characterization of dislocations, stacking faults, twins, phases, and intergrain/interphase stress changes. Perspectives on future developments of synchrotron X-ray and neutron diffraction and on research directions on the deformation mechanisms of novel metals are discussed.
high-entropy alloys / microstructures / micromechanical behaviors / synchrotron X-ray diffraction / neutron diffraction
[1] |
|
[2] |
|
[3] |
|
[4] |
|
[5] |
|
[6] |
|
[7] |
|
[8] |
|
[9] |
|
[10] |
|
[11] |
|
[12] |
|
[13] |
B. Xiao, J. Zhang, S.F. Liu, et al., Ultrahigh intermediate-temperature strength and good tensile plasticity in chemically complex intermetallic alloys via lamellar architectures, Acta Mater., 262(2024), art. No. 119459.
|
[14] |
C.L. Zhang, L.F. Huang, S.X. Li, K. Li, S.Y. Lu, and J.F. Li, Improved corrosion resistance of laser melting deposited CoCrFeNi-series high-entropy alloys by Al addition, Corros. Sci., 225(2023), art. No. 111599.
|
[15] |
J.Y. Zhang, T.H. Chou, Y.H. Zhou, J.H. Luan, Y.L. Zhao, and T. Yang, Corrosion-resistant L12-strengthened high-entropy alloy with high strength and large ductility, Corros. Sci., 225(2023), art. No. 111593.
|
[16] |
O. El Atwani, H.T. Vo, M.A. Tunes, et al., A quinary WTaC-rVHf nanocrystalline refractory high-entropy alloy withholding extreme irradiation environments, Nat. Commun., 14(2023), No. 1, art. No. 2516.
|
[17] |
R. Feng, Y. Rao, C.H. Liu, et al. Enhancing fatigue life by ductile-transformable multicomponent B2 precipitates in a high-entropy alloy, Nat. Commun., 12(2021), art. No. 3588.
|
[18] |
|
[19] |
B. Gludovatz, A. Hohenwarter, K.V.S. Thurston, et al., Exceptional damage-tolerance of a medium-entropy alloy CrCoNi at cryogenic temperatures, Nat. Commun., 7(2016), art. No. 10602.
|
[20] |
L.H. Mills, M.G. Emigh, C.H. Frey, et al. Temperature-dependent tensile behavior of the HfNbTaTiZr multi-principal element alloy, Acta Mater., 245(2023), art. No. 118618.
|
[21] |
|
[22] |
|
[23] |
|
[24] |
|
[25] |
|
[26] |
|
[27] |
|
[28] |
D.Y. Lin, L.Y. Xu, H.Y. Jing, et al., A strong, ductile, high-entropy FeCoCrNi alloy with fine grains fabricated via additive manufacturing and a single cold deformation and annealing cycle, Addit. Manuf., 36(2020), art. No. 101591.
|
[29] |
|
[30] |
|
[31] |
E. Ma and X.L. Wu, Tailoring heterogeneities in high-entropy alloys to promote strength-ductility synergy, Nat. Commun., 10(2019), No. 1, art. No. 5623.
|
[32] |
|
[33] |
S. Qin, M.X. Yang, P. Jiang, et al., Designing structures with combined gradients of grain size and precipitation in high entropy alloys for simultaneous improvement of strength and ductility, Acta Mater., 230(2022), art. No. 117847.
|
[34] |
|
[35] |
|
[36] |
|
[37] |
|
[38] |
|
[39] |
|
[40] |
|
[41] |
W. Reimers, A.R. Rita Pyzalla, A. Schreyer, and H. Clemens, Neutrons and Synchrotron Radiation in Engineering Materials Science: From Fundamentals to Material and Component Characterization, Wiley-VCH, Weinheim, 2008.
|
[42] |
|
[43] |
F.X. Zhang, S.J. Zhao, K. Jin, et al., Local structure and short-range order in a NiCoCr solid solution alloy, Phys. Rev. Lett., 118(2017), No. 20, art. No. 205501.
|
[44] |
R.K. Nutor, T.D. Xu, X.L. Wang, et al., Liquid helium temperature deformation and local atomic structure of CoNiV medium entropy alloy, Mater. Today Commun., 30(2022), art. No. 103141.
|
[45] |
|
[46] |
|
[47] |
N. Derimow, L. Santodonato, R. Mills, and R. Abbaschian, Insitu imaging of liquid phase separation in molten alloys using cold neutrons, J. Imaging, 4(2017), No. 1, art. No. 5.
|
[48] |
N. Derimow, L.J. Santodonato, B.E. MacDonald, B. Le, E.J. Lavernia, and R. Abbaschian, In-situ imaging of molten high-entropy alloys using cold neutrons, J. Imaging, 5(2019), No. 2, art. No. 29.
|
[49] |
|
[50] |
|
[51] |
|
[52] |
|
[53] |
|
[54] |
|
[55] |
|
[56] |
|
[57] |
W. Woo, Y.S. Kim, H.B. Chae, et al., Competitive strengthening between dislocation slip and twinning in cast-wrought and additively manufactured CrCoNi medium entropy alloys, Acta Mater., 246(2023), art. No. 118699.
|
[58] |
W. Woo, J.S. Jeong, D.K. Kim, et al. Stacking fault energy analyses of additively manufactured stainless steel 316L and CrCoNi medium entropy alloy using in situ neutron diffraction, Sci. Rep., 10(2020), No. 1, art. No. 1350.
|
[59] |
|
[60] |
|
[61] |
|
[62] |
|
[63] |
A.J. Zaddach, C. Niu, C.C. Koch, and D.L. Irving, Mechanical properties and stacking fault energies of NiFeCrCoMn high-entropy alloy, JOM, 65(2013), No. 12, p. 1780.
|
[64] |
N.L. Okamoto, S. Fujimoto, Y. Kambara, et al., Size effect, critical resolved shear stress, stacking fault energy, and solid solution strengthening in the CrMnFeCoNi high-entropy alloy, Sci. Rep., 6(2016), art. No. 35863.
|
[65] |
|
[66] |
|
[67] |
|
[68] |
|
[69] |
|
[70] |
|
[71] |
D.X. Wei, W. Gong, T. Tsuru, et al. Si-addition contributes to overcoming the strength-ductility trade-off in high-entropy alloys, Int. J. Plast., 159(2022), art. No. 103443.
|
[72] |
M. Frank, S.S. Nene, Y. Chen, et al., Correlating work hardening with co-activation of stacking fault strengthening and transformation in a high entropy alloy using in situ neutron diffraction, Sci. Rep., 10(2020), No. 1, art. No. 22263.
|
[73] |
|
[74] |
X. Wang, R.R. De Vecchis, C.Y. Li, et al., Design metastability in high-entropy alloys by tailoring unstable fault energies, Sci. Adv., 8(2022), No. 36, art. No. eabo7333.
|
[75] |
|
[76] |
|
[77] |
|
[78] |
L. Qi and D.C. Chrzan, Tuning ideal tensile strengths and intrinsic ductility of bcc refractory alloys, Phys. Rev. Lett., 112(2014), No. 11, art. No. 115503.
|
[79] |
S. Sheikh, S. Shafeie, Q. Hu, et al., Alloy design for intrinsically ductile refractory high-entropy alloys, J. Appl. Phys., 120(2016), No. 16, art. No. 164902.
|
[80] |
|
[81] |
H.L. Huang, Y. Wu, J.Y. He, et al., Phaee-tranformation ductilization of brittle high-entropy alloys via metastability engineering, Adv. Mater., 29(2017), No. 30, art. No. 1701678.
|
[82] |
|
[83] |
X.Y. Li, Z. Zhang, and J.W. Wang, Deformation twinning in body-centered cubic metals and alloys, Prog. Mater. Sci., 139(2023), art. No. 101160.
|
[84] |
B. Chen, S.Z. Li, J. Ding, X.D. Ding, J. Sun, and E. Ma, Correlating dislocation mobility with local lattice distortion in refractory multi-principal element alloys, Scripta Mater., 222(2023), art. No. 115048.
|
[85] |
|
[86] |
|
[87] |
|
[88] |
|
[89] |
|
[90] |
|
[91] |
|
[92] |
|
[93] |
|
[94] |
|
[95] |
|
[96] |
P. Asghari-Rad, P. Sathiyamoorthi, J.W. Bae, et al., Effect of initial grain size on deformation mechanism during high-pressure torsion in V10Cr15Mn5Fe35Co10Ni25 high-entropy alloy, Adv. Eng. Mater., 22(2020), No. 1, art. No. 1900587.
|
[97] |
|
[98] |
|
[99] |
|
[100] |
|
[101] |
Z. Cheng, H.F. Zhou, Q.H. Lu, H.J. Gao, and L. Lu, Extra strengthening and work hardening in gradient nanotwinned metals, Science, 362(2018), No. 6414, art. No. eaau1925.
|
[102] |
S.K. Guo, Z.L. Ma, G.H. Xia, et al., Pursuing ultrastrong and ductile medium entropy alloys via architecting nanoprecipitates-enhanced hierarchical heterostructure, Acta Mater., 263(2024), art. No. 119492.
|
[103] |
|
[104] |
Y.D. Wang, Y.K. Wang, S.L. Li, and R.G. Li, Synchrotron-based high-energy X-ray diffraction and microdiffraction investigations on the mechanical heterogeneity of heterostructured metals, Scripta Mater., 224(2023), art. No. 115144.
|
[105] |
|
[106] |
Y. Wu, W.H. Liu, X.L. Wang, et al., In-situ neutron diffraction study of deformation behavior of a multi-component high-entropy alloy, Appl. Phys. Lett., 104(2014), No. 5, art. No. 051910.
|
[107] |
|
[108] |
|
[109] |
G. Ribárik, B. Jóni, and T. Ungár, The convolutional multiple whole profile (CMWP) fitting method, a global optimization procedure for microstructure determination, Crystals, 10(2020), No. 7, art. No. 623.
|
[110] |
|
[111] |
|
[112] |
I.V. Ivanov, K.I. Emurlaev, K.E. Kuper, S.A. Akkuzin, and I.A. Bataev, Deconvolution-based peak profile analysis methods for characterization of CoCrFeMnNi high-entropy alloy, Heliyon, 8(2022), No. 9, art. No. e10541.
|
[113] |
C. Lee, F. Maresca, R. Feng, et al., Strength can be controlled by edge dislocations in refractory high-entropy alloys, Nat. Commun., 12(2021), No. 1, art. No. 5474.
|
[114] |
Q.J. Li, H. Sheng, and E. Ma, Strengthening in multi-principal element alloys with local-chemical-order roughened dislocation pathways, Nat. Commun., 10(2019), No. 1, art. No. 3563.
|
[115] |
B.L. Yin, S. Yoshida, N. Tsuji, and W.A. Curtin, Yield strength and misfit volumes of NiCoCr and implications for short-range-order, Nat. Commun., 11(2020), No. 1, art. No. 2507.
|
[116] |
|
[117] |
|
[118] |
P. Thirathipviwat, Y. Onuki, G. Song, J. Han, and S. Sato, Evaluation of dislocation activities and accumulation in cold swaged CoCrFeMnNi high entropy alloy, J. Alloys Compd., 890(2022), art. No. 161816.
|
[119] |
|
[120] |
M.Y. Luo, T.N. Lam, P.T. Wang, et al., Grain-size-dependent microstructure effects on cyclic deformation mechanisms in CoCrFeMnNi high-entropy-alloys, Scripta Mater., 210(2022), art. No. 114459.
|
[121] |
|
[122] |
T.N. Lam, H.H. Chin, X. Zhang, et al., Tensile overload-induced texture effects on the fatigue resistance of a CoCrFeMnNi high-entropy alloy, Acta Mater., 245(2023), art. No. 118585.
|
[123] |
|
[124] |
G.M. Stoica, A.D. Stoica, M.K. Miller, and D. Ma, Temperature-dependent elastic anisotropy and mesoscale deformation in a nanostructured ferritic alloy, Nat. Commun., 5(2014), art. No. 5178.
|
[125] |
|
[126] |
C. Lee, G. Kim, Y. Chou, et al., Temperature dependence of elastic and plastic deformation behavior of a refractory high-entropy alloy, Sci. Adv., 6(2020), No. 37, art. No. eaaz4748.
|
[127] |
|
[128] |
|
[129] |
|
[130] |
|
[131] |
L. Balogh, G. Ribárik, and T. Ungár, Stacking faults and twin boundaries in fcc crystals determined by X-ray diffraction profile analysis, J. Appl. Phys., 100(2006), No. 2, art. No. 023512.
|
[132] |
D.R. Steinmetz, T. Jäpel, B. Wietbrock, et al., Revealing the strain-hardening behavior of twinning-induced plasticity steels: Theory, simulations, experiments, Acta Mater., 61(2013), No. 2, p. 494.
|
[133] |
|
[134] |
M. Frank, S.S. Nene, Y. Chen, et al., Direct evidence of the stacking fault-mediated strain hardening phenomenon, Appl. Phys. Lett., 119(2021), No. 8, art. No. 081906.
|
[135] |
C. Hu, C.P. Huang, Y.X. Liu, A. Perlade, K.Y. Zhu, and M.X. Huang, The dual role of TRIP effect on ductility and toughness of a medium Mn steel, Acta Mater., 245(2023), art. No. 118629.
|
[136] |
S. Chen, H.S. Oh, B. Gludovatz, et al., Real-time observations of TRIP-induced ultrahigh strain hardening in a dual-phase CrMnFeCoNi high-entropy alloy, Nat. Commun., 11(2020), No. 1, art. No. 826.
|
[137] |
N. Xu, S.L. Li, R.G. Li, et al., In situ investigation of the deformation behaviors of Fe20Co30Cr25Ni25 and Fe20Co30Cr30Ni20 high entropy alloys by high-energy X-ray diffraction, Mater. Sci. Eng. A, 795(2020), art. No. 139936.
|
[138] |
L. Wang, C. Fu, Y.D. Wu, R.G. Li, Y.D. Wang, and X.D. Hui, Ductile Ti-rich high-entropy alloy controlled by stress induced martensitic transformation and mechanical twinning, Mater. Sci. Eng. A, 763(2019), art. No. 138147.
|
[139] |
Y.J. Shi, S.L. Li, T.L. Lee, et al., In situ neutron diffraction study of a new type of stress-induced confined martensitic transformation in Fe22Co20Ni19Cr20Mn12Al7 high-entropy alloy, Mater. Sci. Eng. A, 771(2020), art. No. 138555.
|
[140] |
|
[141] |
|
[142] |
J.J. Gao, P. Castany, and T. Gloriant, Synthesis and characterization of a new TiZrHfNbTaSn high-entropy alloy exhibiting superelastic behavior, Scripta Mater., 198(202)), art. No. 113824.
|
[143] |
|
[144] |
|
[145] |
M.L. Wang, Y.P. Lu, J.G. Lan, et al., Lightweight, ultrastrong and high thermal-stable eutectic high-entropy alloys for elevated-temperature applications, Acta Mater., 248(2023), art. No. 118806.
|
[146] |
Y.H. Jia, Z.J. Wang, Q.F. Wu, et al., Boron microalloying for high-temperature eutectic high-entropy alloys, Acta Mater., 262(2024), art. No. 119427.
|
[147] |
D. Yun, H. Chae, T. Lee, et al., Stress contribution of B2 phase in Al07CoCrFeNi eutectic high entropy alloy, J. Alloys Compd., 918(2022), art. No. 165673.
|
[148] |
|
[149] |
J.V. Gordon, R.E. Lim, M.J. Wilkin, D.C. Pagan, R.A. Lebensohn, and A.D. Rollett, Evaluating the grain-scale deformation behavior of a single-phase FCC high entropy alloy using synchrotron high energy diffraction microscopy, Acta Mater., 215(2021), art. No. 117120.
|
[150] |
M. Naeem, H.Y. He, F. Zhang, et al., Cooperative deformation in high-entropy alloys at ultralow temperatures, Sci. Adv., 6(2020), No. 13, art. No. eaax4002.
|
/
〈 | 〉 |