• 제목/요약/키워드: properties of modulus

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원자힘 현미경으로 측정된 리튬화 실리콘 나노선의 나노기계적 성질 (Nanomechanical Properties of Lithiated Silicon Nanowires Probed with Atomic Force Microscopy)

  • 이현수;신원호;권상구;최장욱;박정영
    • 한국진공학회지
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    • 제20권6호
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    • pp.395-402
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    • 2011
  • 원자힘 현미경을 이용하여 실리콘 기판 위에 증착된 실리콘 나노선과 리튬화된 실리콘 나노선의 나노기계적 성질을 연구했다. 금 촉매를 사용하여 스테인리스 기판 위에서 증기-액체-고체 과정을 통해 실리콘 나노선을 합성하였다. 완전히 리튬화된 실리콘 나노선을 얻기 위해서 전기 화학적 방법을 사용했고, 이를 실리콘 기판 위에 증착하였다. 접촉모드 원자힘 현미경으로 측정된 표면 거칠기는 실리콘 나노선에서 $0.65{\pm}0.05$ nm에 비해 리튬화된 실리콘 나노선에서 $1.72{\pm}0.16$ nm으로 더 큰 값을 보여주었다. 탐침과 표면 사이의 접착력에서 리튬화의 영향을 조사하기 위해 힘 분광기법을 사용했다. 실리콘 나노선의 접착력이 실리콘 기판과 ~60 nN으로 흡사한 반면에, 리튬화된 실리콘 나노선은 ~15 nN으로 더 작은 값을 나타냈다. 또한, 탄성적으로 부드러운 무정형 구조 때문에 국부적 탄성 스프링 상수도 실리콘 나노선 66.30 N/m보다 완전히 리튬화된 실리콘 나노선이 16.98 N/m으로 상대적으로 작았다. 실리콘 나노선과 완전히 리튬화된 실리콘 나노선에서 탐침과 표면 사이에 마찰력의 수직항력 의존성과 스캔 속도 의존성을 조사하기 위하여 각 0.5~4.0 Hz와 0.01~200 nN으로 측정했다. 본 연구에서 실리콘과 리튬화된 실리콘의 기계적 성질에 관련된 접착력과 마찰력의 경향성이 보여졌고 이러한 방향의 연구는 충-방전 동안 리튬화된 나노수준의 영역의 화학적 맵핑에 응용성을 보여준다.

여러 스테인레스 스틸 호선의 물성 및 표면의 비교 (PHYSICAL PROPERTIES AND SURFACE TOPOGRAPHY OF ORTHODONTIC STAINLESS STEEL WIRES : COMPARING A NEW KOREAN PRODUCT WITH OTHERS FROM FOREIGN COMPANIES)

  • 이성호;김태우;장영일
    • 대한치과교정학회지
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    • 제31권1호
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    • pp.149-157
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    • 2001
  • 본 연구의 목적은 새로이 생산된 국산 스테인레스 스틸호선의 특성을 평가하기 위하여, 현재까지 사용하고 있는 다른 스테인레스 스틸호선과 비교하여, 국산 스테인레스 스틸호선의 특성과 장단점을 분석하고 평가하여 임상적 사용시에 도움을 주고자 하는 것이다. 이를 위해 Unitek의 Standard, Resilient, Hi-T 3종류의 스테인레스 스틸호선과 Ormco 의 Stainless Steel, 진성기업의 Stainless Steel등 5종(0.016x0.022과 0.019x0.025)을 가지고 성분, 치수비교, 인장물성, 만곡피로도물성, 비틀림물성, 경도 및 표면등을 관찰하여 비교하여 다음과 같은 결론을 얻었다. 1. 인장물성을 보면, 최대강도는 0.016x0.025의 경우 Unitek Hi-T, Unitek Resilient, Jinsung Stainless Steel, Ormco Stainless Steel, Unitek Standard 순이고, 0.019x0.025의 경우 Unitek Hi-T, Jinsung, Ormco, Unitek Resilient, Unitek Standard 의 순이었다. 2. 연신율은 0.016x0.022의 경우는 Unitek Standard, Ormco Stainless Steel, Unitek Hi-T, Unitek Resilient, Jinsung Stainless Steel의 순이었고, 0.019x0.025의 경우는 Unitek Hi-T, Unitek Standard, Ormco Stainless Steel, Jinsung Stainless Steel, Unitek Resilient의 순이었다. 3. 탄성계수는 0.016x0.022의 경우 Jinsung Stainless Steel, Unitek Hi-T, Unitek Resilient, Ormco Stainless Steel, Unitek Standard의 순이었고, 0.019x0.025의 경우 Unitek Resilient, Jinsung Stainless Steel, Ormco Stainless Steel, Unitek Hi-T, Unitek Standard의 순이었다. 4. 만곡피로도실험은 0.016x0.022의 경우 Jinsung Stainless Steel이 8.4회로 구부림에 대한 가장 파절저항도가 컸으며, Unitek Hi-T, Unitek Standard, Unitek Resilient, Ormco Stainless Steel의 순이고 0.019x0.025의 경우는 Unitek Hi-T가 10.4회 견디고, Jinsung Stainless Steel, Unitek Resilient, Unitek Standard, Ormco Stainless Steel의 순이었다. 5. 비틀림실험은 0.016x0.022의 경우 Unitek Resilient가 가장 비틀림에 대한 저항이 큰데, 64.8회의 회전후 파절한다. 그 다음으로 Jinsung Stainless Steel, Unitek Hi-T, Ormco Stainless Steel, Unitek Standard(50.6회) 순이었다. 0.019x0.025의 경우 Jinsung Stainless Steel이 가장 커서 83.2회의 회전에 저항하고, Unitek Resilient, Unitek Standard의 순이고 Ormco와 Unitek Hi-T가 가장 저항력이 작았다. 6. 주사전자현미경으로 본 표면은 모든 제품에서 생산과정 중에 보이는 압흔과 pitting이 관찰되는데, 진성기업의 Stainless Steel은 가늘고 긴 압흔이 있으며 비교적 매끄러운 표면을 보이고, Unitek사의 경우 압흔과 함께 pitting 이 관찰되며, Ormco Stainless Steel의 경우 불규칙한 pitting이 다수 존재했다.

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A Comparison Study on Reinforcement Behaviors of Functional Fillers in Nitrile Rubber Composites

  • Seong, Yoonjae;Lee, Harim;Kim, Seonhong;Yun, Chang Hyun;Park, Changsin;Nah, Changwoon;Lee, Gi-Bbeum
    • Elastomers and Composites
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    • 제55권4호
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    • pp.306-313
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    • 2020
  • To investigate the reinforcing effects of functional fillers in nitrile rubber (NBR) materials, high-structure carbon black (HS45), coated calcium carbonate (C-CaCO3), silica (200MP), and multi-walled carbon nanotubes (MWCNTs) were used as functional filler, and carbon black (SRF) as a common filler were used for oil-resistant rubber. The curing and mechanical properties of HS45-, 200MP-, and MWCNT-filled NBR compounds were improved compared to those of the SRF-filled NBR compound. The reinforcing effect also increased with a decrease in the particle size of the fillers. The C-CaCO3-filled NBR compound exhibited no reinforcing effect with increasing filler concentration because of their large primary particle size (2 ㎛). The reinforcing behavior based on 100% modulus of the functional filler based NBR compounds was compared by using several predictive equation models. The reinforcing behavior of the C-CaCO3-filled NBR compound was in accordance with the Smallwood-Einstein equation whereas the 200MP- and MWCNT-filled NBR compounds fitted well with the modified Guth-Gold (m-Guth-Gold) equation. The SRF- and HS45-filled NBR compounds exhibited reinforcing behavior in accordance with the Guth-Gold and m-Guth-Gold equations, respectively, at a low filler content. However, the values of reinforcement parameter (100Mf/100Mu) of the SRF- and HS45-filled NBR compounds were higher than those determined by the predictive equation model at a high filler content. Because the chains of SRF composed of spherical filler particles are similarly changed to rod-like filler particles embedded in a rubber matrix and the reinforcement parameter rapidly increased with a high content of HS45, the higher-structured filler. The reinforcing effectiveness of the functional fillers was numerically evaluated on the basis of the effectiveness index (��SRF/��f) determined by the ratio of the volume fraction of the functional filler (��f) to that of the SRF filler (��SRF) at three unit of reinforcing parameter (100Mf/100Mu). On the basis of their effectiveness index, MWCNT-, 200MP-, and HS45-filled compounds showed higher reinforcing effectiveness of 420%, 70%, and 20% than that of SRF-filled compound, respectively whereas C-CaCO3-filled compound exhibited lower reinforcing effectiveness of -50% than that of SRF-filled compound.

Optimal flammability and thermal buckling resistance of eco-friendly abaca fiber/ polypropylene/egg shell powder/halloysite nanotubes composites

  • Saeed Kamarian;Reza Barbaz-Isfahani;Thanh Mai Nguyen Tran;Jung-Il Song
    • Advances in nano research
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    • 제16권2호
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    • pp.127-140
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    • 2024
  • Upon direct/indirect exposure to flame or heat, composite structures may burn or thermally buckle. This issue becomes more important in the natural fiber-based composite structures with higher flammability and lower mechanical properties. The main goal of the present study was to obtain an optimal eco-friendly composite system with low flammability and high thermal buckling resistance. The studied composite consisted of polypropylene (PP) and short abaca fiber (AF) with eggshell powder (ESP) and halloysite clay nanotubes (HNTs) additives. An optimal base composite, consisting of 30 wt.% AF and 70 wt.% PP, abbreviated as OAP, was initially introduced based on burning rate (BR) and the Young's modulus determined by horizontal burning test (HBT) and tensile test, respectively. The effects of adding ESP to the base composite were then investigated with the same experimental tests. The results indicated that though the BR significantly decreased with the increase of ESP content up to 6 wt.%, it had a very destructive influence on the stiffness of the composite. To compensate for the damaging effect of ESP, small amount of HNT was used. The performance of OAP composite with 6 wt.% ESP and 3 wt.% HNT (OAPEH) was explored by conducting HBT, cone calorimeter test (CCT) and tensile test. The experimental results indicated a 9~23 % reduction in almost all flammability parameters such as heat release rate (HRR), total heat released (THR), maximum average rate of heat emission (MARHE), total smoke released (TSR), total smoke production (TSP), and mass loss (ML) during combustion. Furthermore, the combination of 6 wt.% ESP and 3 wt.% HNT reduced the stiffness of OAP to an insignificant amount by maximum 3%. Moreover, the char residue analysis revealed the distinct differences in the formation of char between AF/PP and AF/PP/ESP/HNT composites. Afterward, dilatometry test was carried out to examine the coefficient of thermal expansion (CTE) of OAP and OAPEH samples. The obtained results showed that the CTE of OAPEH composite was about 18% less than that of OAP. Finally, a theoretical model was used based on first-order shear deformation theory (FSDT) to predict the critical bucking temperatures of the OAP and OAPEH composite plates. It was shown that in the absence of mechanical load, the critical buckling temperatures of OAPEH composite plates were higher than those of OAP composites, such that the difference between the buckling temperatures increased with the increase of thickness. On the contrary, the positive effect of CTE reduction on the buckling temperature decreased by raising the axial compressive mechanical load on the composite plates which can be assigned to the reduction of stiffness after the incorporation of ESP. The results of present study generally stated that a suitable combination of AF, PP, ESP, and HNT can result in a relatively optimal and environmentally friendly composite with proper flame and thermal buckling resistance with no significant decline in the stiffness.

Mechanical behavior of rock-coal-rock specimens with different coal thicknesses

  • Guo, Wei-Yao;Tan, Yun-Liang;Yu, Feng-Hai;Zhao, Tong-Bin;Hu, Shan-Chao;Huang, Dong-Mei;Qin, Zhe
    • Geomechanics and Engineering
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    • 제15권4호
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    • pp.1017-1027
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    • 2018
  • To explore the influence of coal thickness on the mechanical behavior and the failure characteristics of rock-coal-rock (RCR) mass, the experimental investigation of uniaxial compressive tests was conducted first and then a systematic numerical simulation by particle flow code (PFC2D) was performed to deeply analyze the failure mechanical behavior of RCR specimens with different coal thicknesses in conventional compression tests. The overall elastic modulus and peak stress of RCR specimens lie between the rock and the coal. Inter-particle properties were calibrated to match the physical sample strength and the stiffness response. Numerical simulation results show that the deformation and strength behaviors of RCR specimens depend not only on the coal thickness, but also on the confining pressure. Under low confining pressures, the overall failure mechanism of RCR specimen is the serious damage of coal section when the coal thickness is smaller than 30 mm, but it is shear failure of coal section when the coal thickness is larger than 30 mm. Whereas under high confining pressures, obvious shear bands exist in both the coal section and the rock section when the coal thickness is larger than 30 mm, but when the coal thickness is smaller than 30mm, the failure mechanism is serious damage of coal section and shear failure of rock section.

Cr-Si-Al-N 코팅의 상형성 및 표면 물성에 미치는 Si 함량의 영향 (Effect of Si Content on the Phase Formation Behavior and Surface Properties of the Cr-Si-Al-N Coatings)

  • 최선아;김형순;김성원;;김형태;오윤석
    • 한국표면공학회지
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    • 제49권6호
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    • pp.580-586
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    • 2016
  • Cr-Si-Al-N coating with different Si content were deposited by hybrid physical vapor deposition (PVD) method consisting of unbalanced magnetron (UBM) sputtering and arc ion plating (AIP). The deposition temperature was $300^{\circ}C$, and the gas ratio of $Ar/N_2$ were 9:1. The CrSi alloy and aluminum targets used for arc ion plating and sputtering process, respectively. Si content of the CrSi alloy targets were varied with 1 at%, 5 at%, and 10 at%. The phase analysis, composition and microstructural analysis performed using x-ray diffraction (XRD) and field emission scanning electron microscopy (FESEM) including energy dispersive spectroscopy (EDS), respectively. All of the coatings grown with textured CrN phase (200) plane. The thickness of the Cr-Si-Al-N films were measured about $2{\mu}m$. The friction coefficient and removal rate of films were measured by a ball-on-disk test under 20N load. The friction coefficient of all samples were 0.6 ~ 0.8. Among all of the samples, the removal rate of CrSiAlN (10 at% Si) film shows the lowest values, $4.827{\times}10^{-12}mm^3/Nm$. As increasing of Si contents of the CrSiAlN coatings, the hardness and elastic modulus of CrSiAlN coatings were increased. The morphology and composition of wear track of the films was examined by scanning electron microscopy (SEM) and energy dispersive spectroscopy, respectively. The surface energy of the films were obtained by measuring of contact angle of water drop. Among all of the samples, the CrSiAlN (10 at% Si) films shows the highest value of the surface energy, 41 N/m.

Predicting the splitting tensile strength of manufactured-sand concrete containing stone nano-powder through advanced machine learning techniques

  • Manish Kewalramani;Hanan Samadi;Adil Hussein Mohammed;Arsalan Mahmoodzadeh;Ibrahim Albaijan;Hawkar Hashim Ibrahim;Saleh Alsulamy
    • Advances in nano research
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    • 제16권4호
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    • pp.375-394
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    • 2024
  • The extensive utilization of concrete has given rise to environmental concerns, specifically concerning the depletion of river sand. To address this issue, waste deposits can provide manufactured-sand (MS) as a substitute for river sand. The objective of this study is to explore the application of machine learning techniques to facilitate the production of manufactured-sand concrete (MSC) containing stone nano-powder through estimating the splitting tensile strength (STS) containing compressive strength of cement (CSC), tensile strength of cement (TSC), curing age (CA), maximum size of the crushed stone (Dmax), stone nano-powder content (SNC), fineness modulus of sand (FMS), water to cement ratio (W/C), sand ratio (SR), and slump (S). To achieve this goal, a total of 310 data points, encompassing nine influential factors affecting the mechanical properties of MSC, are collected through laboratory tests. Subsequently, the gathered dataset is divided into two subsets, one for training and the other for testing; comprising 90% (280 samples) and 10% (30 samples) of the total data, respectively. By employing the generated dataset, novel models were developed for evaluating the STS of MSC in relation to the nine input features. The analysis results revealed significant correlations between the CSC and the curing age CA with STS. Moreover, when delving into sensitivity analysis using an empirical model, it becomes apparent that parameters such as the FMS and the W/C exert minimal influence on the STS. We employed various loss functions to gauge the effectiveness and precision of our methodologies. Impressively, the outcomes of our devised models exhibited commendable accuracy and reliability, with all models displaying an R-squared value surpassing 0.75 and loss function values approaching insignificance. To further refine the estimation of STS for engineering endeavors, we also developed a user-friendly graphical interface for our machine learning models. These proposed models present a practical alternative to laborious, expensive, and complex laboratory techniques, thereby simplifying the production of mortar specimens.

광중합형 수복용 복합레진의 기계적 성질에 미치는 수중침적과 Thermal Cycling의 영향 (Effect of Immersion in Water and Thermal Cycling on the Mechanical Properties of Light-cured Composite Resins)

  • 배태성;김태조;김효성
    • 대한의용생체공학회:의공학회지
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    • 제17권3호
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    • pp.327-336
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    • 1996
  • This study was performed to investigate the effec% of immersion in water and thermal cycling on the mechanical peoperties of light cured restorative composite resins. Five commerically available light-cured composite resins(Photo Clearfil A : CA, Lite-Fil A . LF, Clearril Photo Posterior CP, Prisms AP.H.. PA, 2100 : ZH) were unto The specimens of 12 m in diameter and 0.7 m in thickness were made, and an immersion in $37^{\circ}C$ water for 7 days and a thermal cycling of 1000 cycles at 15 second dwell time each in $5^{\circ}C$ and $55^{\circ}C$ baths were performed. Biaxial flexure test was conducted using the ball-on-three-ball method at the crosshead speed of 0.5mm/min. In order to investigate the deterioration of composite resins during the thermal cycling test, Weibull analysis for the biaxial flexure strengths was done. Fracture surfaces and the surfaces before and after the thermal cycling test were examined by SEM. The highest Weibull modulus value of 10.09 after thermal cycling tests which means the lowest strength variation, was observed in the CP group, and the lowest value of 4.47 was obsered in the LF Group. Biaxial flexure strengths and Knoop hardness numbers significantly decreased due to the thermal cycling ($\textit{p}$< 0.01), however, they recovered when specimens were drie4 The highest biaxial flexure strength of 125.65MPa was observed in the ZH group after the thermal cycling test, and the lowest value of 64.86MPa was observed in the CA group. Biaxial flexure strengths of ZH and CP groups were higher than those of PA, CF, and CA groups after thermal cycling test($\textit{p}$< 0.05). Knoop hardness numbers of CP group after the thermal cycling test was the highest(95.47 $\pm$ 7.35kg/$mm^2$) among the samples, while that of CA group was the lowest(30.73 $\pm$ 2.58kg/$mm^2$). Knoop hardness numbers showed the significant differences between the CP group and others after the thermal cycling test(($\textit{p}$< 0.05). Fracture surfaces showed that the composite resin failure developed along the matrix resin and the filler/resin interface region, and the cracks propagated in the conical shape from the maximum tensile stress zone.

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$Br{\aa}nemark\;Novum^{(R)}$ 즉시 임플랜트 보철 수복 방법에 관한 삼차원 유한요소 분석적 연구 (THREE DIMENSIONAL FINITE ELEMENT ANALYSIS OF $BR{\AA}NEMARK\;NOVUM^{(R)}$ IMMEDIATE IMPLANT PROSTHODONTIC PROTOCOL)

  • 김우영;김영수;장경수;김창회
    • 대한치과보철학회지
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    • 제39권5호
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    • pp.463-476
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    • 2001
  • Since the treatment of edentulous patients with osseointegrated implant was first introduced more than 30 years ago, implant therapy has become one of the most important dental treatment modalities today. Based on the previous experience and knowledge, $Br{\aa}nemark\;Novum^{(R)}$ protocol was introduced with the concept of simplifying surgical and prosthetic technique and reducing healing time recently. This protocol recommends the installation of three 5mm wide diameter futures in anterior mandible and the prefabricated titanium bars for superstructure fabrication. This study was designed to analyze the stress distribution at fixture and superstructure area according to changes of fixture number, diameter and superstructure materials. Four 3-dimensional finite element models were fabricated. Model 1 - 5 standard fixtures (13mm long and 3.75mm in diameter) & superstructure consisted of type IV gold alloy and resin Model 2- 3 wide diameter fixtures (13mm long and 5.0mm in diameter) & superstructure consisted of type IV gold alloy and resin Model 3-3 wide diameter fixtures (13mm long and 5.0mm in diameter) & superstructure consisted of titanium and resin Model 4-3 wide diameter fixtures (13mm long and 5.0mm in diameter) & superstructure consisted of titanium and porcelain A 150N occlusal force was applied on the 1st molar of each model in 3 directions - vertical($90^{\circ}$), horizontal($0^{\circ}$) and oblique($120^{\circ}$). After analyzing the stresses and displacements, following results were obtained. 1. There were no significant difference in stress distribution among experimental models. 2. Model 2, 3, 4 showed less amount of compressive stress than that of model 1. However, tensile stress was similar. 3. Veneer material with a high modulus of elasticity demonstrated less stress accumulation in the superstructure. Within the limites of this study, $Br{\aa}nemark\;Novum^{(R)}$ protocol demonstrated comparable biomechanical properties to conventional protocol.

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Si and Mg doped Hydroxyapatite Film Formation by Plasma Electrolytic Oxidation

  • Park, Seon-Yeong;Choe, Han-Cheol
    • 한국표면공학회:학술대회논문집
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    • 한국표면공학회 2016년도 추계학술대회 논문집
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    • pp.195-195
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    • 2016
  • Titanium and its alloys are widely used as implants in orthopedics, dentistry and cardiology due to their outstanding properties, such as high strength, high level of hemocompatibility and enhanced biocompatibility. Hence, recent works showed that the synthesis of new Ti-based alloys for implant application involves more biocompatible metallic alloying element, such as, Nb, Hf, Zr and Mo. In particular, Nb and Hf are one of the most effective Ti ${\beta}-stabilizer$ and reducing the elastic modulus. Plasma electrolyte oxidation (PEO) is known as excellent method in the biocompatibility of biomaterial due to quickly coating time and controlled coating condition. The anodized oxide layer and diameter modulation of Ti alloys can be obtained function of improvement of cell adhesion. Silicon (Si) and magnesium (Mg) has a beneficial effect on bone. Si in particular has been found to be essential for normal bone and cartilage growth and development. In vitro studies have shown that Mg plays very important roles in essential for normal growth and metabolism of skeletal tissue in vertebrates and can be detected as minor constituents in teeth and bone. The aim of this study is to research Si and Mg doped hydroxyapatite film formation by plasma electrolytic oxidation. Ti-29Nb-xHf (x= 0, 3, 7 and 15wt%, mass fraction) alloys were prepared Ti-29Nb-xHf alloys of containing Hf up from 0 wt% to 15 wt% were melted by using a vacuum furnace. Ti-29Nb-xHf alloys were homogenized for 2 hr at $1050^{\circ}C$. Each alloy was anodized in solution containing typically 0.15 M calcium acetate monohydrate + 0.02 M calcium glycerophosphate at room temperature. A direct current power source was used for the process of anodization. Anodized alloys was prepared using 270V~300V anodization voltage at room. A Si and Mg coating was produced by RF-magnetron sputtering system. RF power of 100W was applied to the target for 1h at room temperature. The microstructure, phase and composition of Si and Mg coated oxide surface of Ti-29Nb-xHf alloys were examined by FE-SEM, EDS, and XRD.

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