研究目的
Investigating the bioactivity and biocompatibility of femtosecond laser-modified Ti6Al4V alloy for biomedical applications.
研究成果
Femtosecond laser surface modification of Ti6Al4V alloy enhances its bioactivity and biocompatibility, making it a promising material for biomedical implants. The modified surface showed superior growth of hydroxyapatite and efficient cellular attachment compared to untreated surfaces.
研究不足
The study was conducted in vitro, and the results may not fully replicate in vivo conditions. The long-term effects of fs-laser-modified Ti6Al4V alloy implants in the human body were not investigated.
1:Experimental Design and Method Selection
The study employed a Ti:sapphire femtosecond laser for surface modification of Ti6Al4V alloy samples. The bioactivity and biocompatibility of the modified surfaces were assessed through in vitro tests including immersion in simulated body fluid (SBF) and cell culture experiments.
2:Sample Selection and Data Sources
Ti6Al4V alloy samples of thickness 1.2 mm and area 1 × 1 cm2 were used. Samples were mechanically polished and ultrasonically cleaned before laser treatment.
3:List of Experimental Equipment and Materials
Ti:sapphire fs-laser system (wavelength 800 nm, pulse repetition rate 3 kHz, pulse duration 45 fs),Field-emission scanning electron microscope (SEM) (SIGMA model),Grazing incidence X-ray diffraction (GIXRD),Micro-Raman spectroscopy,Energy-dispersive X-ray analyzer (EDX),Fourier transform infrared spectroscopy (FTIR),Confocal laser microscope (Zeiss LSM 780 platform),MTT assay kit
4:Experimental Procedures and Operational Workflow
Samples were laser-treated and then characterized using SEM, GIXRD, and micro-Raman spectroscopy. For bioactivity tests, samples were immersed in SBF for 2 weeks. Biocompatibility was assessed using U2OS human osteosarcoma cell line through MTT assay and confocal microscopy.
5:Data Analysis Methods
Data from SEM, EDX, GIXRD, FTIR, and micro-Raman spectroscopy were analyzed to assess HAP growth. Cell viability and growth were quantified using MTT assay and confocal microscopy images were analyzed with ImageJ software.
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Energy-dispersive X-ray analyzer
AZTEC microanalysis software (software version 3.1)
Oxford Instruments Ltd, U.K.
Elemental distribution analysis
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Confocal laser microscope
LSM 780
Zeiss
Observation of adhered cell morphology
ZEISS LSM 990 Spectral Multiplex
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Ti:sapphire fs-laser system
Not specified
Not specified
Surface modification of Ti6Al4V alloy samples
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Field-emission scanning electron microscope
SIGMA
Not specified
Surface morphology investigation
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MTT assay kit
Not specified
Not specified
Assessment of in vitro cell viability and growth potential
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