Porous stainless steel for biomedical applications

Porous 316L austenitic stainless steel was synthesized by powder metallurgy with relative density of 0.50 and 0.30 using 15 and 30 wt. (%) respectively of ammonium carbonate and ammonium bicarbonate as foaming agents. The powders were mixed in a planetary ball mill at 60 rpm for 10 minutes. The samp...

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Main Authors: Sabrina de Fátima Ferreira Mariotto, Vanessa Guido, Liu Yao Cho, Cristina Pacheco Soares, Kátia Regina Cardoso
Format: Article
Language:English
Published: Associação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol) 2011-01-01
Series:Materials Research
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392011000200003
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spelling doaj-b4a0596495fe43f2b340f14463fad4322020-11-25T00:25:41ZengAssociação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol)Materials Research1516-14392011-01-01142146154Porous stainless steel for biomedical applicationsSabrina de Fátima Ferreira MariottoVanessa GuidoLiu Yao ChoCristina Pacheco SoaresKátia Regina CardosoPorous 316L austenitic stainless steel was synthesized by powder metallurgy with relative density of 0.50 and 0.30 using 15 and 30 wt. (%) respectively of ammonium carbonate and ammonium bicarbonate as foaming agents. The powders were mixed in a planetary ball mill at 60 rpm for 10 minutes. The samples were uniaxially pressed at 287 MPa and subsequently vacuum heat treated in two stages, the first one at 200 ºC for 5 hours to decompose the carbonate and the second one at 1150 ºC for 2 hours to sinter the steel. The sintered samples had a close porous structure and a multimodal pore size distribution that varied with the foaming agent and its concentration. The samples obtained by addition of 30 wt. (%) of foaming agents had a more homogeneous porous structure than that obtained with 15 wt. (%). The MTT cytotoxicity test (3-[4,5-dimethylthiazol]-2,5-diphenyltetrazolium bromide) was used to evaluate the mitochondrial activity of L929 cells with samples for periods of 24, 48, and 72 hours. The cytotoxicity test showed that the steel foams were not toxic to fibroblast culture. The sample with the best cellular growth, therefore the most suitable for biomedical applications among those studied in this work, was produced with 30 wt. (%) ammonium carbonate. In this sample, cell development was observed after 48 hours of incubation, and there was adhesion and spreading on the material after 72 hours. Electrochemical experiments using a chloride-containing medium were performed on steel foams and compared to massive steel. The massive steel had a better corrosion performance than the foams as the porosity contributes to increase the surface area exposed to the corrosive medium.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392011000200003stainless steelcellular solidspowder metallurgycytotoxicity
collection DOAJ
language English
format Article
sources DOAJ
author Sabrina de Fátima Ferreira Mariotto
Vanessa Guido
Liu Yao Cho
Cristina Pacheco Soares
Kátia Regina Cardoso
spellingShingle Sabrina de Fátima Ferreira Mariotto
Vanessa Guido
Liu Yao Cho
Cristina Pacheco Soares
Kátia Regina Cardoso
Porous stainless steel for biomedical applications
Materials Research
stainless steel
cellular solids
powder metallurgy
cytotoxicity
author_facet Sabrina de Fátima Ferreira Mariotto
Vanessa Guido
Liu Yao Cho
Cristina Pacheco Soares
Kátia Regina Cardoso
author_sort Sabrina de Fátima Ferreira Mariotto
title Porous stainless steel for biomedical applications
title_short Porous stainless steel for biomedical applications
title_full Porous stainless steel for biomedical applications
title_fullStr Porous stainless steel for biomedical applications
title_full_unstemmed Porous stainless steel for biomedical applications
title_sort porous stainless steel for biomedical applications
publisher Associação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol)
series Materials Research
issn 1516-1439
publishDate 2011-01-01
description Porous 316L austenitic stainless steel was synthesized by powder metallurgy with relative density of 0.50 and 0.30 using 15 and 30 wt. (%) respectively of ammonium carbonate and ammonium bicarbonate as foaming agents. The powders were mixed in a planetary ball mill at 60 rpm for 10 minutes. The samples were uniaxially pressed at 287 MPa and subsequently vacuum heat treated in two stages, the first one at 200 ºC for 5 hours to decompose the carbonate and the second one at 1150 ºC for 2 hours to sinter the steel. The sintered samples had a close porous structure and a multimodal pore size distribution that varied with the foaming agent and its concentration. The samples obtained by addition of 30 wt. (%) of foaming agents had a more homogeneous porous structure than that obtained with 15 wt. (%). The MTT cytotoxicity test (3-[4,5-dimethylthiazol]-2,5-diphenyltetrazolium bromide) was used to evaluate the mitochondrial activity of L929 cells with samples for periods of 24, 48, and 72 hours. The cytotoxicity test showed that the steel foams were not toxic to fibroblast culture. The sample with the best cellular growth, therefore the most suitable for biomedical applications among those studied in this work, was produced with 30 wt. (%) ammonium carbonate. In this sample, cell development was observed after 48 hours of incubation, and there was adhesion and spreading on the material after 72 hours. Electrochemical experiments using a chloride-containing medium were performed on steel foams and compared to massive steel. The massive steel had a better corrosion performance than the foams as the porosity contributes to increase the surface area exposed to the corrosive medium.
topic stainless steel
cellular solids
powder metallurgy
cytotoxicity
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392011000200003
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AT vanessaguido porousstainlesssteelforbiomedicalapplications
AT liuyaocho porousstainlesssteelforbiomedicalapplications
AT cristinapachecosoares porousstainlesssteelforbiomedicalapplications
AT katiareginacardoso porousstainlesssteelforbiomedicalapplications
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