Enhanced piezoelectric response of hybrid biodegradable 3D poly(3-hydroxybutyrate) scaffolds coated with hydrothermally deposited ZnO for biomedical applications

被引:44
|
作者
Zviagin, Andrei S. [1 ]
Chernozem, Roman V. [1 ]
Surmeneva, Maria A. [1 ]
Pyeon, Myeongwhun [2 ]
Frank, Michael [2 ]
Ludwig, Tim [2 ]
Tutacz, Peter [2 ]
Ivanov, Yurii F. [1 ,3 ]
Mathur, Sanjay [2 ]
Surmenev, Roman A. [1 ,2 ]
机构
[1] Natl Res Tomsk Polytech Univ, Phys Mat Sci & Composite Mat Ctr, Tomsk 634050, Russia
[2] Univ Cologne, Inst Inorgan Chem, Greinstr 6, D-50939 Cologne, Germany
[3] IHCE, 2-3 Akad Chesky Ave, Tomsk 634055, Russia
关键词
Hybrid polymer scaffolds; Hydrothermal treatment; Zinc oxide; Piezoelectricity; Wettability; DIFFERENT MORPHOLOGIES; PLASMA TREATMENT; CELL-ADHESION; NANOPARTICLES; POLYMERS; GROWTH; NANOSTRUCTURES; WETTABILITY; SURFACE; FILMS;
D O I
10.1016/j.eurpolymj.2019.05.016
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Fibrous scaffolds based on biodegradable piezoelectric poly(3-hydroxybutyrate) (PHB) polymers were fabricated via electrospinning. Hydrothermal deposition of zinc oxide (ZnO) on the surfaces of fibrous PHB scaffolds resulted in a homogeneous ZnO layer that grew conformally on the porous polymeric scaffold. X-ray photoelectron spectroscopy (XPS) and X-ray diffraction (XRD) results confirmed the formation of a hexagonal wurtzite crystal structure of ZnO on the PHB fibres. XRD patterns, TEM and EDS analysis revealed a bimodal morphology with rod-like nanostructures that grew preferentially along the c-axis as well as nanoparticles that grew randomly. The piezoelectric charge coefficient d(33) for pristine PHB scaffolds was 2.9 +/- 0.1 pC.N-1, whereas after ZnO deposition, it substantially increased to 13.7 +/- 1.6 pC.N-1. Moreover, the output surface electrical potential of PHB scaffolds after ZnO deposition also substantially increased from 0.58 +/- 0.02 to 0.88 +/- 0.04 V, showing enhanced electromechanical coupling in the piezoelectric nanocomposites. The output surface electric potential for ZnO-coated PHB scaffolds was stable within 1200 loading cycles. In addition, the ZnO rod-like nanostructured surface improved the wettability of PHB fibrous scaffolds, demonstrating synergy between the ceramic and polymeric phases in PHB/ZnO composites. Therefore, the hybrid biodegradable piezoelectric scaffolds reported in the present study are potentially useful for biomedical applications, where both improved piezoelectric response and surface wettability are required.
引用
收藏
页码:272 / 279
页数:8
相关论文
共 41 条
  • [31] Ultra-sensitive, reusable, and superhydrophobic Ag/ZnO/Ag 3D hybrid surface enhanced Raman scattering substrate for hemoglobin detection
    Pal, Anil Kumar
    Chandra, Goutam Kumar
    Umapathy, Siva
    Bharathi Mohan, D.
    JOURNAL OF APPLIED PHYSICS, 2020, 127 (16)
  • [32] Fabrication and finite element simulation of antibacterial 3D printed Poly L-lactic acid scaffolds coated with alginate/magnesium oxide for bone tissue regeneration
    Angili, Sajad Niazi
    Morovvati, Mohammad Reza
    Kardan-Halvaei, Mostafa
    Saber-Samandari, Saeed
    Razmjooee, Kavoos
    Abed, Azher M.
    Toghraie, Davood
    Khandan, Amirsalar
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 224 : 1152 - 1165
  • [33] Optimization of Pulsed Laser Ablation and Radio-Frequency Sputtering Tandem System for Synthesis of 2D/3D Al2O3-ZnO Nanostructures: A Hybrid Approach to Synthesis of Nanostructures for Gas Sensing Applications
    Labis, Joselito Puzon
    Albrithen, Hamad A.
    Hezam, Mahmoud
    Ali Shar, Muhammad
    Algarni, Ahmad
    Alhazaa, Abdulaziz N.
    El-Toni, Ahmed Mohamed
    Alduraibi, Mohammad Abdulaziz
    NANOMATERIALS, 2023, 13 (08)
  • [34] A [101&x304;0] oriented hybrid 3D ZnO nanowall architecture with enhanced dye-sensitized solar cell performance
    Islavath, Nanaji
    SUSTAINABLE ENERGY & FUELS, 2020, 4 (02) : 863 - 868
  • [35] Design and development of poly-L/D-lactide copolymer and barium titanate nanoparticle 3D composite scaffolds using breath figure method for tissue engineering applications
    Kemppi, H.
    Finnila, M. A.
    Lorite, G. S.
    Nelo, M.
    Juuti, J.
    Kokki, M.
    Kokki, H.
    Rasanen, J.
    Mobasheri, A.
    Saarakkala, S.
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2021, 199
  • [36] Fabrication of biocompatible and biodegradable polyvinyl alcohol/sodium alginate blend polymers incorporating Ca2+doped TiO2 nanocomposite 3D scaffold for biomedical applications
    Jiang, Nan
    Qi, Bo
    Fan, Xinyu
    Yao, Ling
    Wang, Yi
    Zhao, Zeyu
    Xu, Yongqing
    Razali, Mohd Hasmizam
    JOURNAL OF SAUDI CHEMICAL SOCIETY, 2023, 27 (06)
  • [37] Co-Deposition of a Hydrogel/Calcium Phosphate Hybrid Layer on 3D Printed Poly(Lactic Acid) Scaffolds via Dip Coating: Towards Automated Biomaterials Fabrication
    Schneider, Matthias
    Guenter, Christina
    Taubert, Andreas
    POLYMERS, 2018, 10 (03)
  • [38] Designing 3D Multihierarchical Heteronanostructures for High-Performance On-Chip Hybrid Supercapacitors: Poly(3,4-(ethylenedioxy)thiophene)-Coated Diamond/Silicon Nanowire Electrodes in an Aprotic Ionic Liquid
    Aradilla, David
    Gao, Fang
    Lewes-Malandrakis, Georgia
    Mueller-Sebert, Wolfgav
    Gentile, Pascal
    Boniface, Maxime
    Aldakov, Dmitry
    Iliev, Boyan
    Schubert, Thomas J. S.
    Nebel, Christoph E.
    Bidan, Gerard
    ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (28) : 18069 - 18077
  • [39] Material extrusion 3D printing of synergistically enhanced conductive poly (lactic) acid polymer composites with reduced graphene oxide and glass fibers for high-performance electronic applications
    Hanif, Muhammad
    Zhang, Li
    Shah, Abdul Hakim
    Chen, Zhangwei
    COMPOSITE STRUCTURES, 2025, 362
  • [40] Design and Development of a 3D Network Hybrid Polymeric System for Enhanced Dielectric Properties through Selective γ-Crystal Growth of Poly(PVDF-CTFE) and Reduced High-Frequency Relaxation
    Hara, Shuta
    Furukawa, Atsushi
    Gunji, Takao
    Ikehara, Takayuki
    Ikake, Hiroki
    Shimizu, Shigeru
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2024, 63 (47) : 20578 - 20586