The emergence of 3D printing technology known as fused filament fabrication (FFF) has offered the possibility of producing an anatomically accurate, patient specific implant with more affordable prices. The only weakness of this technology is related to incompatibility and lack of properties of current material to be applied in biomedical. Therefore, this study aims to develop a new, polymer composite-based biomaterial that exhibits a high processability using FFF technique, strong enough and shows acceptable biocompatibility, and safe for biomedical use. Polyamide 12 (PA12), which meets all these requirements was incorporated with two bioceramic fillers, zirconia and hydroxyapatite in order to improve the mechanical and bioactivity properties. The obtained mechanical properties were compared with injection-molded specimens and also a commercial biomedical product, HAPEXTM which is composed of hydroxyapatite and polyethylene. The yield strength and modulus of the PA12 composites increased steadily with increasing filler loading. Although the strength of printed PA12 composites were reduced compared with injection molded specimen, but still higher than HAPEXTM material. The higher surface roughness obtained by printed PA12 was expected to enhance the cell adhesion and provide better implant fixation.

1.
J.
Nagels
,
M.
Stokdijk
,
P.M.
Rozing
,
J. Shoulder Elb. Surg.
12
35
39
(
2003
).
2.
S.
Dul
,
L.
Fambri
,
A.
Pegoretti
,
Composites : Part A
85
181
191
(
2016
).
3.
Z.
Weng
,
J.
Wang
,
T.
Senthil
,
L.
Wu
,
Mater. Des.
102
276
283
(
2016
).
4.
W.
Zhong
,
F.
Li
,
Z.
Zhang
,
L.
Song
,
Z.
Li
,
Mater. Sci. Eng.
301
125
130
(
2001
).
5.
S.
Hwang
,
E.I.
Reyes
,
K. sik
Moon
,
R.C.
Rumpf
,
N.S.
Kim
,
J. Electron. Mater.
44
771
777
(
2015
).
6.
H.
Wang
,
Y.
Li
,
Y.
Zuo
,
J.
Li
,
S.
Ma
,
L.
Cheng
,
Biomaterials
.
28
3338
3348
(
2007
).
7.
S.
Zhou
,
Y.-B.
Li
,
Y.-Y.
Wang
,
Y.
Zuo
,
S.-B.
Gao
,
L.
Zhang
,
Polym. Eng. Sci.
54
1003
12
(
2014
).
8.
A.
Afzal
,
Mater. Express.
4
1
12
(
2014
).
9.
J.A.
Juhasz
,
S.M.
Best
,
R.
Brooks
,
M.
Kawashita
,
N.
Miyata
,
T.
Kokubo
, et al.,
Biomaterials
.
25
949
955
(
2004
).
10.
C.R.
Rocha
,
A.R. Torrado
Perez
,
D.A.
Roberson
,
C.M.
Shemelya
,
E.
MacDonald
,
R.B.
Wicker
,
J. Mater. Res.
29
1859
1866
(
2014
).
11.
M.
Wang
,
R.
Joseph
,
W.
Bonfield
,
Biomaterials.
19
2357
2366
(
1998
).
12.
S.
Ramakrishna
,
J.
Mayer
,
E.
Wintermantel
,
K.W.
Leong
,
61
1189
1224
(
2001
).
13.
J.
Anderud
,
R.
Jimbo
,
P.
Abrahamsson
,
E.
Adolfsson
,
J.
Malmstrom
,
A.
Wennerberg
,
Clin. Oral Implants Res.
00
1
8
(
2015
).
14.
D.D.
Deligianni
,
N.D.
Katsala
,
P.G.
Koutsoukos
,
Y.F.
Missirlis
,
Biomaterials.
22
87
96
(
2000
).
This content is only available via PDF.