present in the biological apatite, but these are not substituted in HA intentionally. In

addition, the research on ionic substitution seems to be motivated by the possible

therapeutic role of ions rather than materials characterization.

It is recommended that an extensive work should be carried out on ionic

substituted HAs to fully exploit their potential. Some future scope in thiseld

includes the following aspects:

Comparison of ionic substituted HAs with stoichiometric HA.

Effect of different ions on the structure and properties of HA should be compared.

Composition close to natural apatite should be synthesized.

Experiments on in vivo examination need to be enhanced.

References

Alshemary AZ, Akram M, Goh YF, Tariq U, Butt FK, Abdolahi A, Hussain R (2015) Synthesis,

characterization, in vitro bioactivity and antimicrobial activity of magnesium and nickel doped

silicate hydroxyapatite. Ceram Int 41(9):1188611898

Ayed FB, Bouaziz J, Bouzouita K (2001) Heat treatment and sintering ofuorapatite under argon

atmosphere. J Alloys Compd 322:238245

Barinov SM, Tumanov SV, Fadeeva IV, Bibikov VY (2003) Environment effect on the strength of

hydroxy- anduorohydroxyapatite ceramics. J Inorg Mater 39:877880

Bhadang KA, Holding CA, Thissen H, Mc-Lean KM, Forsythe JS, Haynes DR (2010) Biological

responses of human osteoblasts and osteoclasts toame-sprayed coatings of hydroxyapatite and

uorapatite blends. Acta Biomater 6:15751583

Bigi A, Foresti E, GandolM, Gazzano M, Roveri N (1997) Isomorphous substitutions in

β-tricalcium phosphate: the different effects of zinc and strontium. J Inorg Biochem 66:259265

Bigi A, Boanini E, Capuccini C, Gazzano M (2007) Strontium-substituted hydroxyapatite

nanocrystals. Inorg Chem Acta 360:10091016

Boanini E, Gazzano M, Bigi A (2010) Ionic substitutions in calcium phosphates synthesized at low

temperature. Acta Biomater 6:18821894

Bracci B, Torricelli P, Panzavolta S, Boanini E, Giardino R, Bigi A (2009) Effect of Mg2+, Sr2+ and

Mn2+ on the chemico-physical and in vitro biological properties of calcium phosphate biomi-

metic coatings. J Inorg Biochem 103:16661674

Capuccini C, Torricelli P, Sima F, Boanini E, Ristoscu C, Bracci B, Socol G, Fini M, Mihailescu IN,

Bigi A (2008) Strontium-substituted hydroxyapatite coatings synthesized by pulsed-laser depo-

sition: in vitro osteoblast and osteoclast response. Acta Biomater 4:18851893

Chen Y, Miao X (2004) Effect ofuorine addition on the corrosion resistance of hydroxyapatite

ceramics. Ceram Int 30(7):19611965

Chen F, Wang ZC, Lin CJ (2002) Preparation and characterization of nano-sized hydroxyapatite

particles and hydroxyapatite/chitosan nano-composite for use in biomedical materials. Mater

Lett 57:858861

Choodamani C, Nagabhushana GP, Rudraswamy BP, Chandrappa (2014) Thermal effect on

magnetic properties of Mg-Zn ferrite nanoparticles. Mater Lett 116:227230

Ciobanu CS, Popa Cristina L, Iconaru SL, Stan M, Dinischiotu A, Negrila CC, Motelica HM,

Guegan R, Predoi D (2014) Systematic investigation and in vitro biocompatibility studies on

mesoporous europium doped hydroxyapatite. Cent Eur J Chem 12:10321046

Clausen L, Fabricius I (2000) BET measurements: outgassing of minerals. J Colloid Interface Sci

227:715

Combes C, Cazalbou S, Rey C (2016) Apatite biominerals. Minerals 6(34):125

450

S. Kapoor et al.