AccScience Publishing / IJB / Volume 9 / Issue 5 / DOI: 10.18063/ijb.756
RESEARCH ARTICLE

A state-of-the-art guide about the effects of sterilization processes on 3D-printed materials for surgical planning and medical applications: A comparative study

Arnau Valls-Esteve1,2,3* Pamela Lustig-Gainza4 Nuria Adell-Gomez1,3 Aitor Tejo-Otero4 Marti Englí-Rueda1,3 Estibaliz Julian-Alvarez5 Osmeli Navarro-Sureda5 Felip Fenollosa-Artés4,6 Josep Rubio-Palau2,3,7,8 Lucas Krauel2,3,7 Josep Munuera2,3,9
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1 Innovation Department, Hospital Sant Joan de Déu, Esplugues de Llobregat, Spain
2 Medicina i Recerca Translacional, Facultat de Medicina i Ciències de la Salut, Universitat de Barcelona, Spain
3 3D for Health Unit (3D4H), Hospital Sant Joan de Déu, Universitat de Barcelona, Spain
4 Centre CIM, Universitat Politècnica de Catalunya (CIM UPC), Barcelona, Spain
5 Sterilization Department, Hospital Sant Joan de Déu, Universitat de Barcelona, Spain
6 Department of Mechanical Engineering, School of Engineering of Barcelona (ETSEIB), Universitat Politècnica de Catalunya, Barcelona, Spain
7 Department of Pediatric Surgery, Hospital Sant Joan de Déu, Universitat de Barcelona, Spain
8 Maxillofacial Unit, Department of Pediatric Surgery, Hospital Sant Joan de Déu, Universitat de Barcelona, Spain
9 Department of Diagnostic Imaging, Hospital Sant Joan de Déu, Universitat de Barcelona, Spain
Submitted: 3 January 2023 | Accepted: 1 March 2023 | Published: 17 May 2023
(This article belongs to the Special Issue Biofabrication: The future of Medicine)
© 2023 by the Author(s). This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution 4.0 International License ( https://creativecommons.org/licenses/by/4.0/ )
Abstract

Surgeons use different medical devices in the surgery, such as patient-specific anatomical models, cutting and positioning guides, or implants. These devices must be sterilized before being used in the operation room. There are many sterilization processes available, with autoclave, hydrogen peroxide, and ethylene oxide being the most common in hospital settings. Each method has both advantages and disadvantages in terms of mechanics, chemical interaction, and post-treatment accuracy. The aim of the present study is to evaluate the dimensional and mechanical effect of the most commonly used sterilization techniques available in clinical settings, i.e., Autoclave 121, Autoclave 134, and hydrogen peroxide (HPO), on 11 of the most used 3D-printed materials fabricated using additive manufacturing technologies. The results showed that the temperature (depending on the sterilization method) and the exposure time to that temperature influence not only the mechanical behavior but also the original dimensioning planned on the 3D model. Therefore, HPO is a better overall option for most of the materials evaluated. Finally, based on the results of the study, a recommendation guide on sterilization methods per material, technology, and clinical application is presented.

Keywords
Additive manufacturing
Sterilization
Materials
Surgical planning
3D printing accuracy
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International Journal of Bioprinting, Electronic ISSN: 2424-8002 Print ISSN: 2424-7723, Published by AccScience Publishing