Biomedical Device Surface Treatment by Laser‐Driven Hydroxyapatite Penetration‐Synthesis Technique for Gapless PEEK‐to‐Bone Integration

Author:

Um Seung‐Hoon12ORCID,Lee Jaehong1,Chae Minseong3,Paternoster Carlo2,Copes Francesco2,Chevallier Pascale2,Lee Dong‐Ho4,Hwang Suk‐Won5,Kim Yu‐Chan1,Han Hyung‐Seop1,Lee Kang‐Sik3,Mantovani Diego2,Jeon Hojeong15ORCID

Affiliation:

1. Biomaterials Research Center Biomedical Research Division Korea Institute of Science and Technology (KIST) Seoul 02792 Republic of Korea

2. Lab Biomaterials and Bioengineering CRC‐I Department of Mining Metallurgical and Materials Engineering and CHU de Quebec Research Centre Regenerative Medicine Laval University Quebec City QC G1V 0A6 Canada

3. Biomedical Engineering Research Center Asan Institute for Life Sciences Asan Medical Center College of Medicine University of Ulsan Seoul 05505 Republic of Korea

4. Department of Orthopedic Surgery Asan Medical Center University of Ulsan College of Medicine Seoul 05505 Republic of Korea

5. KU‐KIST Graduate School of Converging Science and Technology Korea University Seoul 02841 Republic of Korea

Abstract

AbstractPolyetheretherketone (PEEK), a bioinert polymer known for its mechanical properties similar to bone, is capable of averting stress shielding. Due to these attributes, it finds applications in diverse fields like orthopedics, encompassing cervical disc replacement for the neck and spine, along with dentistry and plastic surgery. However, due to insufficient bonding with bone, various methods such as hydroxyapatite (HA) coating on the surface are attempted. Nonetheless, the interface between the polymer and ceramic, two different materials, tended to delaminate after transplantation, posing challenges in preventing implant escape or dislodgement. This research delves into the laser‐driven hydroxyapatite penetration‐synthesis technique. Differing from conventional coating methods that bond layers of dissimilar materials like HA and PEEK, this technology focuses on synthesizing and infiltrating ionized HA within the PEEK substrate resulting in an interface‐free HA–PEEK surface. Conversely, HA–PEEK with this technology applied achieves complete, gap‐free direct bone–implant integration.  Our research involved the analysis of various aspects. By means of these, we quantitatively assesed the enhanced bone bonding characteristics of HA‐PEEK surfaces treated with this approach and offered and explanation for the mechanism responsible for direct bone integration.

Funder

Ministry of Education

KU-KIST Graduate School of Converging Science and Technology

Korea Institute of Science and Technology

Ministry of Science and ICT, South Korea

Publisher

Wiley

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