• 제목/요약/키워드: $Fe_3O_4$ nanoparticles

검색결과 168건 처리시간 0.021초

나노입자 Zn0.5Ni0.5Fe2O4 초상자성 성질 연구 (Superparamagnetic Properties off Zn0.5Ni0.5Fe2O4 Nanoparticles)

  • 이승화
    • 한국자기학회지
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    • 제16권1호
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    • pp.40-44
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    • 2006
  • 졸-겔법을 이용하여 나노 입자 $Zn_{0.5}Ni_{0.5}Fe_2O_4$를 제조하여 x선 회절법(XRD) 및 주사전자현미경(SEM) 측정을 통하여 결정학적 특성 및 입자의 크기를 연구하였으며, 제조된 나노 입자의 초상자성 성질을 Mossbauer분광법, 진동시료 자화율 측정기(VSM)를 이용하여 연구하였다 XRD및 SEM의 측정으로부터 열처리 온도가 $300^{\circ}C$에서 순수한 cubic spinel구조를 가지며, 이 때 열 처리한 시료의 평균입자 크기는 7nm인 균일한 구형상 임을 알 수 있었다 Mossbauer분광실험으로 $300^{\circ}C$에서 열처리한 입자가 상온에서 초상자성의 특성을 가지고 있음을 알 수 있었으며, 4.2K에서의 초미세자기장은 $H_{hf}$ (B-자리)=510, $H_{hf}$(A-자리)=475 kOe, 이성질체 이동 값은 0.37(B-자리), 0.33mm/s(A-자리)로 분석되었다. VSM측정 결과로부터 상온에서 초상자성 특성을 갖는 7nm $Zn_{0.5}Ni_{0.5}Fe_2O_4$의 차단온도 $T_B$는 90 K로 결정하였으며, 자기이방성상수 $K=1.6\times10^6\;erg/cm^3$ 값을 얻었다.

재사용이 가능한 나노복합재료 Fe3O4-ACCS-Ag의 제조 및 항균 특성 평가 (Investigation of Synthesis and Antibacterial Properties of a Magnetically Reusable Fe3O4-ACCS-Ag Nanocomposite)

  • 심재홍;김해원;김진원;서영석;오세강;조민;박정희;오병택
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제20권3호
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    • pp.25-33
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    • 2015
  • In this study, Fe3O4-ACCS-Ag nanoparticles (NPs) were successfully synthesized using silica extracted from corn cob ash. The synthesized Fe3O4-ACCS-Ag NPs were characterized using X-ray diffraction (XRD), scanning electron microscopyenergy dispersive X-ray spectroscopy (SEM-EDX), transmission electron microscopy (TEM) and fourier transform infrared spectroscopy (FTIR). In addition, the potential application of Fe3O4-ACCS-Ag NPs as an antibacterial material in water disinfection was investigated using Escherichia coli ATCC 8739 as model bacteria. The antibacterial activity of synthesized composite material showed 99.9% antibacterial effect within 20 min for the tested bacteria. From this experiment, the synthesized Fe3O4-ACCS-Ag nanocomposites also hold magnetic properties and could be easily recovered from the water solution for its reuse. The reused nanocomposites presented the decreasing antibacterial efficiencies with the reuse cycle but the composite used three times still killed 90% of bacteria in 20 min.

Ring Oxpening Polymerization of D,L-Lactide on Magnetite Nanoparticles

  • Tian Jing;Feng Ya-Kai;Xu Yong-Shen
    • Macromolecular Research
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    • 제14권2호
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    • pp.209-213
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    • 2006
  • The ring-opening polymerization of D,L-lactide initiated by tin(II) 2-ethylhexanoate $(Sn(Oct)_2)$ on the surface-initiated magnetite $(Fe_{3}O_4)$ nanoparticles was performed at $130^{\circ}C$. The effects of the polymer molar mass and concentration on the amount of surface polymer were investigated. The number average molecular weights, $M_n$, obtained by both NMR and GPC methods fit well within the accuracy of the applied methods and ranged from 1,100 to $4,040g\;mol^{-1}$. A surface functionalization density of up to 625 initiation sites per particle was obtained. The composition of various core-shell particles was determined by TGA, with results indicating magnetite $(Fe_{3}O_4)$ contents, ${\mu}m$, between 17 and 59 wt%. Under the influence of a magnetic field, the heating generated by superparamagnetic core-shell particles suspended in toluene presented guidelines for an optimization of magnetic particle systems with respect to an application for hyperthermia.

Structural and Magnetic Properties of Mechanochemically Prepared Li Ferrite Nanoparticles

  • Haddadi, M.;Mozaffari, M.;Amighian, J.
    • Journal of Magnetics
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    • 제22권2호
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    • pp.169-174
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    • 2017
  • In this work, lithium ferrite ($Li_{0.5}Fe_{2.5}O_4$) nanoparticles were prepared via mechanochemical processing and subsequent heat treatment at a relatively low ($600^{\circ}C$) calcining temperature. The raw materials used were high purity $Fe_2O_3$ and $Li_2CO_3$ that were milled for between 2 and 20 h. The milled powders were then calcined at temperatures of 500 and $600^{\circ}C$ for 5 h in air. XRD results show that optimum conditions to obtain single phase lithium ferrite nanoparticles with a mean crystallite size of about 23 nm, using Scherrer's formula, are 10 h milling and calcination at $600^{\circ}C$. Saturation magnetization and coercivity of the single phase Li ferrite nanoparticles are 44.6 emu/g and 100 Oe respectively, which are both smaller than those of the bulk Li ferrite. The Curie temperature of the single sample was determined by a Faraday balance, which is $578^{\circ}C$ and smaller than that of bulk Li ferrite.

자성 및 발광 특성이 조절 가능한 다기능 코어/중간체/쉘 나노 입자 합성 (Synthesis of the Multifunctional Core/Intermediate/Shell Nanoparticles: Tunable Magnetic and Photoluminescence Properties)

  • 김문경;김세윤;문경석;신원호;정형모
    • 한국분말재료학회지
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    • 제26권6호
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    • pp.463-470
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    • 2019
  • Fe3O4/SiO2/YVO4:Eu3+ multifunctional nanoparticles are successfully synthesized by facile stepwise sol-gel processes. The multifunctional nanoparticles show a spherical shape with narrow size distribution (approximately 40 nm) and the phosphor shells are well crystallized. The Eu3+ shows strong photoluminescence (red emission at 619 nm, absorbance at 290 nm) due to an effective energy transfer from the vanadate group to Eu. Core-shell structured multifunctional nanoparticles have superparamagnetic properties at 300 K. Furthermore, the core-shell nanoparticles have a quick response time for the external magnetic field. These results suggest that the photoluminescence and magnetic properties could be easily tuned by either varying the number of coating processes or changing the phosphor elements. The nanoparticles may have potential applications for appropriate fields such as laser systems, optical amplifiers, security systems, and drug delivery materials.

Preparation, characterization and comparison of antibacterial property of polyethersulfone composite membrane containing zerovalent iron or magnetite nanoparticles

  • Dizge, Nadir;Ozay, Yasin;Simsek, U. Bulut;Gulsen, H. Elif;Akarsu, Ceyhun;Turabik, Meral;Unyayar, Ali;Ocakoglu, Kasim
    • Membrane and Water Treatment
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    • 제8권1호
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    • pp.51-71
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    • 2017
  • Antimicrobial polyethersulfone ultrafiltration membranes containing zerovalent iron ($Fe^0$) and magnetite ($Fe_3O_4$) nanoparticles were synthesized via phase inversion method using polyethersulfone (PES) as membrane material and nano-iron as nanoparticle materials. Zerovalent iron nanoparticles (nZVI) were prepared by the reduction of iron ions with borohydride applying an inert atmosphere by using $N_2$ gases. The magnetite nanoparticles (nMag) were prepared via co-precipitation method by adding a base to an aqueous mixture of $Fe^{3+}$ and $Fe^{2+}$ salts. The synthesized nanoparticles were characterized by scanning electron microscopy, X-ray powder diffraction, and dynamic light scattering analysis. Moreover, the properties of the synthesized membranes were characterized by scanning electron microscopy energy dispersive X-ray spectroscopy and atomic force microscopy. The PES membranes containing the nZVI or nMag were examined for antimicrobial characteristics. Moreover, amount of iron run away from the PES composite membranes during the dead-end filtration were tested. The results showed that the permeation flux of the composite membranes was higher than the pristine PES membrane. The membranes containing nano-iron showed good antibacterial activity against gram-negative bacteria (Escherichia coli). The composite membranes can be successfully used for the domestic wastewater filtration to reduce membrane biofouling.

Experimental design approach for ultra-fast nickel removal by novel bio-nanocomposite material

  • Ince, Olcay K.;Aydogdu, Burcu;Alp, Hevidar;Ince, Muharrem
    • Advances in nano research
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    • 제10권1호
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    • pp.77-90
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    • 2021
  • In the present study, novel chitosan coated magnetic magnetite (Fe3O4) nanoparticles were successfully biosynthesized from mushroom, Agaricus campestris, extract. The obtained bio-nanocomposite material was used to investigate ultra-fast and highly efficient for removal of Ni2+ ions in a fixed-bed column. Chitosan was treated as polyelectrolyte complex with Fe3O4 nanoparticles and a Fungal Bio-Nanocomposite Material (FBNM) was derived. The FBNM was characterized by using X-Ray Diffractometer (XRD), Scanning Electron Microscopy-Energy Dispersive X-Ray Spectroscopy (SEM-EDS), Fourier Transform Infrared spectra (FTIR) and Thermogravimetric Analysis (TGA) techniques and under varied experimental conditions. The influence of some important operating conditions including pH, flow rate and initial Ni2+ concentration on the uptake of Ni2+ solution was also optimized using a synthetic water sample. A Central Composite Design (CCD) combined with Response Surface Modeling (RSM) was carried out to maximize Ni2+ removal using FBNM for adsorption process. A regression model was derived using CCD to predict the responses and analysis of variance (ANOVA) and lack of fit test was used to check model adequacy. It was observed that the quadratic model, which was controlled and proposed, was originated from experimental design data. The FBNM maximum adsorption capacity was determined as 59.8 mg g-1. Finally, developed method was applied to soft drinks to determine Ni2+ levels. Reusability of FBNM was tested, and the adsorption and desorption capacities were not affected after eight cycles. The paper suggests that the FBNM is a promising recyclable nanoadsorbent for the removal of Ni2+ from various soft drinks.

Effects of Solution Concentration on the Structural and Magnetic Properties of Ni0.5Zn0.5Fe2O4 Ferrite Nanoparticles Prepared by Sol-gel

  • Yoo, B.S.;Chae, Y.G.;Kwon, Y.M.;Kim, D.H.;Lee, B.W.;Liu, Chunli
    • Journal of Magnetics
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    • 제18권3호
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    • pp.230-234
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    • 2013
  • The $Ni_{0.5}Zn_{0.5}Fe_2O_4$ nanoparticles about 30 nm were prepared using sol-gel method with metal nitrates dissolved in 2-methoxyathanol. The concentrations of the metal nitrates are adjusted from 0.1 to 0.75 M in order to study the influence on the structural and magnetic properties. The structure and morphology characterization revealed that the crystallinity was improved and the nanoparticle size was increased with the nutrition solution concentrations up to 0.5 M. Degraded crystallinity together with decreased nanoparticle size were observed for concentration of 0.75 M. The saturation magnetization at room temperature reached maximum at 0.5 M, which can be explained by considering the crystallinity and size effect.

세포독성 평가를 통한 γ-Fe2O3 나노입자의 생체안정성 및 약물전달효율 (Biostability and Drug Delivery Efficiency of γ-Fe2O3 Nano-particles by Cytotoxicity Evaluation)

  • 이권재;안정희;신재수;김동희;유화승;조종관
    • 한국재료학회지
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    • 제20권3호
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    • pp.132-136
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    • 2010
  • This study examined the biostability and drug delivery efficiency of g-$Fe_2O_3$ magnetic nanoparticles (GMNs) by cytotoxicity tests using various tumor cell lines and normal cell lines. The GMNs, approximately 20 nm in diameter, were prepared using a chemical coprecipitation technique, and coated with two surfactants to obtain a water-based product. The particle size of the GMNs loaded on hangamdan drugs (HGMNs) measured 20-50 nm in diameter. The characteristics of the particles were examined by X-ray diffraction (XRD), field emission scanning electron microscopy (FE-TEM) and Raman spectrometer. The Raman spectrum of the GMNs showed three broad bands at 274, 612 and $771\;cm^1$. A 3-(4, 5-dimethylthiazol-2-yl)-2, 5-diphenyltetrazolium bromide (MTT) assay showed that the GMNs were non-toxic against human brain cancer cells (SH-SY5Y, T98), human cervical cancer cells (Hela, Siha), human liver cancer cells (HepG2), breast cancer cells (MCF-7), colon cancer cells (CaCO2), human neural stem cells (F3), adult mencenchymal stem cells (B10), human kidney stem cells (HEK293 cell), human prostate cancer (Du 145, PC3) and normal human fibroblasts (HS 68) tested. However, HGMNs were cytotoxic at 69.99% against the DU145 prostate cancer cell, and at 34.37% in the Hela cell. These results indicate that the GMNs were biostable and the HGMNs served as effective drug delivery vehicles.

네오디뮴 폐자석 재활용을 위한 화학환원법을 이용한 철 나노 분말 제조 (Synthesis of Iron Nanopowder from FeCl3 Solution by Chemical Reduction Method for Recycling of Spent Neodymium Magnet)

  • 하용황;강윤지;최승훈;윤호성;안종관
    • 한국산학기술학회논문지
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    • 제13권12호
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    • pp.6187-6195
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    • 2012
  • 네오디뮴 폐자석 침출액으로부터 희유금속인 네오디뮴을 회수하기 위해서는 네오디뮴과 같이 침출되는 철의 부가가치를 높이는 연구가 필요하다. 본 연구에서는 네오디뮴과 같이 침출되는 철의 유용자원화를 위한 기초연구로 철 나노분말 제조하는 실험을 수행하였다. 본 연구는 $FeCl_3$ 용액을 철 분말 원료로, 분산제는 $Na_4O_7P_2$와 Polyvinylpyrrolidone를 이용하였고, 환원제로는 $NaBH_4$, 철 나노분말 핵생성 촉진제 시드(seed)로 염화팔라듐을 사용하였다. 제조한 철 나노분말을 XRD, 전자현미경(SEM) 및 PSA 등을 이용하여 분말의 형상 및 크기 등을 분석하였다. 철과 $NaBH_4$의 농도비가 1 : 5이며, 반응시간이 30분 이상인 경우에서 철 분말이 제조되었으며, 이때 철 분말은 구형이었으며, 입도는 약 50 nm ~ 100 nm 크기였다. 분산제 $Na_4O_7P_2$의 경우 100 mg/L에서 철이온의 제타포텐셜이 음의 값을 가지므로 100 mg/L로 일정하게 하고, PVP와 Pd의 농도를 다양하게 하였을 경우, $FeCl_3$와 PVP와 Pd의 질량비 1 : 4 및 1 : 0.001에서, 분산이 양호하고, 입도 100 nm 크기인 철 나노분말을 합성하였다.