Publikasi Scopus 2024 per tanggal 31 Mei 2024 (409 artikel)

Faadhila A.; Taufiqurrakhman M.; Katili P.A.; Rahman S.F.; Lestari D.C.; Whulanza Y.
Faadhila, Afrah (58066134600); Taufiqurrakhman, Mohamad (56493034400); Katili, Puspita Anggraini (56608201800); Rahman, Siti Fauziyah (55440248200); Lestari, Delly Chipta (55980475100); Whulanza, Yudan (36807053500)
58066134600; 56493034400; 56608201800; 55440248200; 55980475100; 36807053500
Optimizing PEEK implant surfaces for improved stability and biocompatibility through sandblasting and the platinum coating approach
2024
Frontiers in Mechanical Engineering
10
1360743
0
Research Center for Biomedical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia; Institute of Functional Surfaces (iFS), School of Mechanical Engineering, University of Leeds, Leeds, United Kingdom; Biomedical Engineering Program Study, Department of Electrical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia; Department of Microbiology, Faculty of Medicine, Universitas Indonesia, Salemba, Jakarta, Indonesia; Department of Mechanical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia
Faadhila A., Research Center for Biomedical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia; Taufiqurrakhman M., Institute of Functional Surfaces (iFS), School of Mechanical Engineering, University of Leeds, Leeds, United Kingdom; Katili P.A., Research Center for Biomedical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia, Biomedical Engineering Program Study, Department of Electrical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia; Rahman S.F., Research Center for Biomedical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia, Biomedical Engineering Program Study, Department of Electrical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia; Lestari D.C., Department of Microbiology, Faculty of Medicine, Universitas Indonesia, Salemba, Jakarta, Indonesia; Whulanza Y., Research Center for Biomedical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia, Department of Mechanical Engineering, Faculty of Engineering, Universitas Indonesia, West Java, Depok, Indonesia
Polyether–ether–ketone (PEEK) is a commonly employed biomaterial for spinal, cranial, and dental implant applications due to its mechanical properties, bio-stability, and radiolucency, especially when compared to metal alloys. However, its biologically inert behavior poses a substantial challenge in osseointegration between host bone and PEEK implants, resulting in implant loosening. Previous studies identified PEEK surface modification methods that prove beneficial in enhancing implant stability and supporting cell growth, but simultaneously, those modifications have the potential to promote bacterial attachment. In this study, sandblasting and sputter coating are performed to address the aforementioned issues as preclinical work. The aim is to investigate the effects of surface roughness through alumina sandblasting and a platinum (Pt) sputtered coating on the surface friction, cell viability, and bacterial adhesion rates of PEEK material. This study reveals that a higher average surface roughness of the PEEK sample (the highest was 1.2 μm obtained after sandblasting) increases the coefficient of friction, which was 0.25 compared to the untreated PEEK of 0.14, indicating better stability performance but also increased bacterial adhesion. A novelty of this study is that the method of Pt coating after alumina sandblasting is seen to significantly reduce the bacterial adhesion by 67% when compared to the sandblasted PEEK sample after 24 h immersion, implying better biocompatibility without changing the cell viability performance. Copyright © 2024 Faadhila, Taufiqurrakhman, Katili, Rahman, Lestari and Whulanza.
cell viability; implant; PEEK biomaterial; platinum sputtered coating; sandblasting
Adhesion; Alumina; Aluminum oxide; Biocompatibility; Biomechanics; Bone; Cell culture; Cell proliferation; Coatings; Ethers; Friction; Ketones; Polyether ether ketones; Stability; Surface roughness; Bacterial adhesion; Cell viability; Dental implant applications; Implant; Implant surface; Metal alloys; Platinum sputtered coating; Polyether–ether–ketone biomaterial; Sandblasting; Sputtered coatings; Platinum
Universitas Indonesia, UI, (NKB-795/UN2.RST/HKP.05.00/2020, 626/SK/R/UI/2020); Universitas Indonesia, UI
The author(s) declare that financial support was received for the research, authorship, and/or publication of this article. The study was funded by Universitas Indonesia PUTI Grant NKB-795/UN2.RST/HKP.05.00/2020 Nomor: 626/SK/R/UI/2020.
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