Role of Microstructure on the Potential of MAX and MAB Phases …
37
22. Ade M, Hillebrecht H (2015) Ternary borides Cr 2 AlB 2 , Cr 3 AlB 4 , and Cr 4 AlB 6 : the first
members of the series (CrB 2 ) n CrAl with n = 1, 2, 3 and a unifying concept for ternary
borides as MAB-phases. Inorg Chem 54:6122−6135
23. Tan X, Chai P, Thompson CM, Shatruk M (2013) Magnetocaloric effect in AlFe 2 B 2 : toward
magnetic refrigerants from earth-abundant elements. J Am Chem Soc 135:9553−9557
24. Kota S, Zapata-Solvas E, Ly EA et al (2016) Synthesis and characterization of an alumina
forming nanolaminated boride: MoAlB.Sci Rep6:26475. https://doi.org/10.1038/srep26475
25. Gupta S, Dey M (2019) Novel MAB phase-based nanolaminates suit high performance
applications. Adv Mater Process 177:22–26
26. Khazaei M, Wang J, Estili M, Ranjbar A, Suehara S, Arai M, Esfarjani K, Yunoki S (2019)
Novel MAB phases and insights into their exfoliation into 2D MBenes. Nanoscale 11:11305–
11314
27. Alameda LT, Holder CF, Fenton JL, Schaak RE(2017) Partial etching of Al from MoAlB
single crystals to expose catalytically active basal planes for the hydrogen evolution reaction.
Chem Mater 29:8953−8957
28. Alameda LT, Moradifar P, Metzger ZP, Alem N, Schaak RE (2018) Topochemical deintercalation of Al from MoAlB: stepwise etching pathway, layered intergrowth structures, and
two-dimensional MBene. J Am Chem Soc 140:8833−8840
29. Gupta S, Fuka M (2018) Synthesis of MoAlB particulates and their porous derivatives by
selective deintercalation of Al from MoAlB. In: Sun Z et al (eds) Energy technology 2018.
TMS 2018. The minerals, metals & materials series
30. Rackl T, Eisenburger L, Niklaus R, Johrend D (2019) Syntheses and physical properties of the
MAX phase boride Nb 2 SB and the solid solutions Nb 2 SB x C 1-x (x = 0–1). Phys Rev Mater
3:054001
31. Li C, Zhan Y, Jiang W (2011) Zr–Si biomaterials with high strength and low elastic modulus.
Mater Des 32:4598–4602
32. Morgan NB (2004) Medical shape memory alloy applications—the market and its products.
Mater Sci Eng A 378:16–23
33. Jani JM, Leary M, Subic A, Gibson MA (2014) A review of shape memory alloy research,
applications and opportunities. Mater Des 56:1078–1113
34. Ibrahim MZ, Sarhan AAD, Yusuf F, Hamdi M (2017) Biomedical materials and techniques
to improve the tribological, mechanical and biomedical properties of orthopedic implants. J
Alloys Compd 714:636–667
35. Bommala VK, Krishna MG, RaoCT (2019) Magnesium matrix composites for biomedical
applications: a review.J Magnes Alloy 7:72–79
36. Shaharom NA, Abdul Kadir MR, Yusop AH, Bakir AA, HermawanH(2012) Porous biodegradable metals for hard tissue scaffolds: a review. Int J Biomater. Article ID 641430 (open
access)
37. Su Y, Cockerill I, Wang Y, Qin Y-X, Chang L, Zheng Y, Zhu D (2019) Zinc-based biomaterials for regeneration and therapy. Trends Biotechnol 37:428–441. https://doi.org/10.1016/j.
tibtech.2018.10.009
38. Hernández-Escobar D, Champagne S, Yilmazer H, Dikici B, Boehlert CJ, Hermawan H
(2019) Current status and perspectives of zinc-based absorbable alloys for biomedical
applications.Acta Biomater 97:1–22
39. Lia H, Peng LM, Gong M, He LH, Zhao JH, Zhang YF (2005) Processing and microstructure
of Ti 3 SiC 2 /M (M = Ni or Co) composites. Mater Lett 59:2647–2649
40. Gu W-L, Zhou Y (2006) Reactions between Ti and Ti 3 SiC 2 in temperature range of 1273–1573
K. Trans Nonferrous Met Soc China 16:1281–1288
41. Zhang YM, Sun ZM, Zhou YC (1999) Cu/Ti 3 SiC 2 composites: a new electrofriction material.
Mater Res Innov 3:80–84
42. Zhang J, Zhou YC (2008) Microstructure, mechanical, and electrical properties of Cu–
Ti 3 AlC 2 and in situ Cu–TiC x composites. J Mater Res 23:924–932
43. Wang W, Zhai H, Chen L, Zhou Y, Huang Z, Bei G, Greil P (2017) Sintering and properties
of mechanical alloyed Ti 3 AlC 2 -Cu composites. Mater Sci Eng A685:154–158
37
22. Ade M, Hillebrecht H (2015) Ternary borides Cr 2 AlB 2 , Cr 3 AlB 4 , and Cr 4 AlB 6 : the first
members of the series (CrB 2 ) n CrAl with n = 1, 2, 3 and a unifying concept for ternary
borides as MAB-phases. Inorg Chem 54:6122−6135
23. Tan X, Chai P, Thompson CM, Shatruk M (2013) Magnetocaloric effect in AlFe 2 B 2 : toward
magnetic refrigerants from earth-abundant elements. J Am Chem Soc 135:9553−9557
24. Kota S, Zapata-Solvas E, Ly EA et al (2016) Synthesis and characterization of an alumina
forming nanolaminated boride: MoAlB.Sci Rep6:26475. https://doi.org/10.1038/srep26475
25. Gupta S, Dey M (2019) Novel MAB phase-based nanolaminates suit high performance
applications. Adv Mater Process 177:22–26
26. Khazaei M, Wang J, Estili M, Ranjbar A, Suehara S, Arai M, Esfarjani K, Yunoki S (2019)
Novel MAB phases and insights into their exfoliation into 2D MBenes. Nanoscale 11:11305–
11314
27. Alameda LT, Holder CF, Fenton JL, Schaak RE(2017) Partial etching of Al from MoAlB
single crystals to expose catalytically active basal planes for the hydrogen evolution reaction.
Chem Mater 29:8953−8957
28. Alameda LT, Moradifar P, Metzger ZP, Alem N, Schaak RE (2018) Topochemical deintercalation of Al from MoAlB: stepwise etching pathway, layered intergrowth structures, and
two-dimensional MBene. J Am Chem Soc 140:8833−8840
29. Gupta S, Fuka M (2018) Synthesis of MoAlB particulates and their porous derivatives by
selective deintercalation of Al from MoAlB. In: Sun Z et al (eds) Energy technology 2018.
TMS 2018. The minerals, metals & materials series
30. Rackl T, Eisenburger L, Niklaus R, Johrend D (2019) Syntheses and physical properties of the
MAX phase boride Nb 2 SB and the solid solutions Nb 2 SB x C 1-x (x = 0–1). Phys Rev Mater
3:054001
31. Li C, Zhan Y, Jiang W (2011) Zr–Si biomaterials with high strength and low elastic modulus.
Mater Des 32:4598–4602
32. Morgan NB (2004) Medical shape memory alloy applications—the market and its products.
Mater Sci Eng A 378:16–23
33. Jani JM, Leary M, Subic A, Gibson MA (2014) A review of shape memory alloy research,
applications and opportunities. Mater Des 56:1078–1113
34. Ibrahim MZ, Sarhan AAD, Yusuf F, Hamdi M (2017) Biomedical materials and techniques
to improve the tribological, mechanical and biomedical properties of orthopedic implants. J
Alloys Compd 714:636–667
35. Bommala VK, Krishna MG, RaoCT (2019) Magnesium matrix composites for biomedical
applications: a review.J Magnes Alloy 7:72–79
36. Shaharom NA, Abdul Kadir MR, Yusop AH, Bakir AA, HermawanH(2012) Porous biodegradable metals for hard tissue scaffolds: a review. Int J Biomater. Article ID 641430 (open
access)
37. Su Y, Cockerill I, Wang Y, Qin Y-X, Chang L, Zheng Y, Zhu D (2019) Zinc-based biomaterials for regeneration and therapy. Trends Biotechnol 37:428–441. https://doi.org/10.1016/j.
tibtech.2018.10.009
38. Hernández-Escobar D, Champagne S, Yilmazer H, Dikici B, Boehlert CJ, Hermawan H
(2019) Current status and perspectives of zinc-based absorbable alloys for biomedical
applications.Acta Biomater 97:1–22
39. Lia H, Peng LM, Gong M, He LH, Zhao JH, Zhang YF (2005) Processing and microstructure
of Ti 3 SiC 2 /M (M = Ni or Co) composites. Mater Lett 59:2647–2649
40. Gu W-L, Zhou Y (2006) Reactions between Ti and Ti 3 SiC 2 in temperature range of 1273–1573
K. Trans Nonferrous Met Soc China 16:1281–1288
41. Zhang YM, Sun ZM, Zhou YC (1999) Cu/Ti 3 SiC 2 composites: a new electrofriction material.
Mater Res Innov 3:80–84
42. Zhang J, Zhou YC (2008) Microstructure, mechanical, and electrical properties of Cu–
Ti 3 AlC 2 and in situ Cu–TiC x composites. J Mater Res 23:924–932
43. Wang W, Zhai H, Chen L, Zhou Y, Huang Z, Bei G, Greil P (2017) Sintering and properties
of mechanical alloyed Ti 3 AlC 2 -Cu composites. Mater Sci Eng A685:154–158
