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Complex Impedance and Modulus Analysis on Porous and Non-Porous Scaffold Composites Due to Effect of Hydroxyapatite/Starch Proportion.
Beh, Chong You; Cheng, Ee Meng; Tan, Xiao Jian; Mohd Nasir, Nashrul Fazli; Abdul Majid, Mohd Shukry; Mohd Jamir, Mohd Ridzuan; Khor, Shing Fhan; Lee, Kim Yee; Mohamad, Che Wan Sharifah Robiah.
Afiliação
  • Beh CY; Department of Engineering and Built Environment, Tunku Abdul Rahman University of Management and Technology, Penang Branch, Pulau Pinang 11200, Malaysia.
  • Cheng EM; Faculty of Electronic Engineering & Technology, Universiti Malaysia Perlis (UniMAP), Kangar 02600, Malaysia.
  • Tan XJ; Advanced Communication Engineering (ACE) Centre of Excellence, Universiti Malaysia Perlis (UniMAP), Kangar 02600, Malaysia.
  • Mohd Nasir NF; Centre for Multimodal Signal Processing, Tunku Abdul Rahman University of Management and Technology (TAR UMT), Jalan Genting Kelang, Setapak, Kuala Lumpur 53300, Malaysia.
  • Abdul Majid MS; Department of Electrical and Electronics Engineering, Faculty of Engineering and Technology, Tunku Abdul Rahman University of Management and Technology (TAR UMT), Jalan Genting Kelang, Setapak, Kuala Lumpur 53300, Malaysia.
  • Mohd Jamir MR; Sports Engineering Research Centre (SERC), Universiti Malaysia Perlis (UniMAP), Kangar 02600, Malaysia.
  • Khor SF; Faculty of Electronic Engineering & Technology, Universiti Malaysia Perlis (UniMAP), Kangar 02600, Malaysia.
  • Lee KY; Sports Engineering Research Centre (SERC), Universiti Malaysia Perlis (UniMAP), Kangar 02600, Malaysia.
  • Mohamad CWSR; Faculty of Mechanical Engineering & Technology, Universiti Malaysia Perlis (UniMAP), Kangar 02600, Malaysia.
Polymers (Basel) ; 15(2)2023 Jan 08.
Article em En | MEDLINE | ID: mdl-36679201
ABSTRACT
This study aims to investigate the electric responses (complex modulus and complex impedance analysis) of hydroxyapatite/starch bone scaffold as a function of hydroxyapatite/starch proportion and the microstructural features. Hence, the non-porous and porous hydroxyapatite/starch composites were fabricated with various hydroxyapatite/starch proportions (70/30, 60/40, 50/50, 40/60, 30/70, 20/80, and 10/90 wt/wt%). Microstructural analysis of the porous hydroxyapatite/starch composites was carried out by using scanning electron microscopy. It shows that the formation of hierarchical porous microstructures with high porosity is more significant at a high starch proportion. The complex modulus and complex impedance analysis were conducted to investigate the electrical conduction mechanism of the hydroxyapatite/starch composites via dielectric spectroscopy within a frequency range from 5 MHz to 12 GHz. The electrical responses of the hydroxyapatite/starch composites are highly dependent on the frequency, material proportion, and microstructures. High starch proportion and highly porous hierarchical microstructures enhance the electrical responses of the hydroxyapatite/starch composite. The material proportion and microstructure features of the hydroxyapatite/starch composites can be indirectly reflected by the simulated electrical parameters of the equivalent electrical circuit models.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article