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Fundamental Theory of Biodegradable Metals—Definition, Criteria, and Design

  • Yang Liu
  • , Yufeng Zheng
  • , Xie Hui Chen
  • , Jian An Yang
  • , Haobo Pan
  • , Dafu Chen
  • , Luning Wang
  • , Jialiang Zhang
  • , Donghui Zhu
  • , Shuilin Wu
  • , Kelvin Wai Kwok Yeung
  • , Rong Chang Zeng
  • , Yong Han
  • , Shaokang Guan
  • Peking University
  • Shenzhen Sun Yat-sen Cardiovascular Hospital
  • Shenzhen Institute of Advanced Technology
  • Capital Medical University
  • University of Science and Technology Beijing
  • Tianjin University
  • The University of Hong Kong
  • Shandong University of Science and Technology
  • Xi'an Jiaotong University
  • Zhengzhou University

Research output: Contribution to journalReview articlepeer-review

579 Scopus citations

Abstract

Until now there has been no fundamental theory applicable for biodegradable metals (BMs). First, this paper optimizes the definition of BMs given in 2014. Second, the dual criteria of biodegradability and biocompatibility are proposed for BMs, and all metallic elements in the periodic table with accessible data are screened on the basis of these criteria. Regarding biodegradability, electrode potential, reactivity series, galvanic series, Pilling–Bedworth ratio, and Pourbaix diagrams are all adopted as parameters to classify the degradable and nondegradable nature of a material, especially in a physiological environment. Considering the biocompatibility at different levels, cellular biocompatibility, tissue biocompatibility, and human/clinical related biocompatibility parameters are put forward to comprehensively evaluate the biosafety of BMs. Third, for the material design of BMs, mechanical properties, chemical properties, physical properties and biological properties should be considered and balanced to guarantee that the degradation behavior of BMs match well with a tissue regeneration/repair procedure as the function of time and spatial location. Besides the selected metallic elements, some nonmetallic elements are selected as suitable alloying elements for BMs. Finally, five classification/research directions for future BMs are proposed: biodegradable pure metals, crystalline alloys, bulk metallic glasses, high entropy alloys, and metal matrix composites.

Original languageEnglish
Article number1805402
JournalAdvanced Functional Materials
Volume29
Issue number18
DOIs
StatePublished - May 2 2019

Keywords

  • biocompatibility
  • biodegradability
  • biodegradable metals
  • classification
  • definition
  • material design

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