• 제목/요약/키워드: microstructural factor

검색결과 88건 처리시간 0.023초

고에너지밀링에 의해 제작된 PMN-PNN-PZT 세라믹스의 미세구조 및 압전 특성 (Microstructural and Piezoelectric Characteristics of PMN-PNN-PZT Ceramics Manufactured by High Energy Milling)

  • 이유형;이상호;류주현
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 하계학술대회 논문집 Vol.9
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    • pp.344-344
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    • 2008
  • 최근 들어, 압전 세라믹스 제조기술의 급속한 발전으로 기계, 전자뿐만 아니라 휴대용 전자기기의 초소형 적층형 압전모터 및 압전변압기 같은 고품질 압전소자의 개발에 있어 특히 소자의 소형화에 따라 나노크기의 분말제조가 연구의 주류를 이루고 있다. 현재 이러한 나노크기의 세라믹스 제조에 사용되는 방법으로는 화학적 공침법, 졸겔법, 수열반응, 그리고 고에너지 볼밀법등이 보고되고 있다. 볼밀링 공정은 세라믹제조 시 필수 불가결한 공정이나 일반적으로 미세화에 그 한계가 있어 $1{\mu}m$이하의 입자크기를 가지는 분말은 제조가 곤란한 것으로 인식되어 왔다. 그러나 고에너지 볼밀을 이용한 볼밀링은 원료의 변형, 파괴 등과 같은 원료의 물리적 변화 뿐만 아니라 원료를 구성하는 원자/분자 구조에 영향을 미쳐 원료의 화학적 특성의 변화를 유발한다. 이러한 화학적 특성의 변화는 이종 원료간의 화학 반응성을 향상시켜 밀링 중에 새로운 화학종의 생성을 유발하게 되는데 이러한 현상을 mechanochemical 효과라 한다. 이러한 mechanochemical 효과는 나노 분말 입자의 제조뿐만 아니라, 분자설계, 재료합성, 자원처리 및 리사이클링 등에도 그 적용이 시도되고 있다. 이러한 mechanochemical 효과를 이용하여 분말을 미세화 함으로써 저온 소결과 재료특성 향상을 기대해 볼 수 있다. 따라서, 이번 연구에서는 우수한 압전 특성을 가진 PMN-PNN-PZT조성을 가지고 시편을 제작하였으며, 고에너지 볼밀시간에 따라 그 압전 및 유전특성을 조사하였다.

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$CaCO_3$ 첨가에 따른 저온소결 PNW-PMN-PZT 세라믹스의 압전 및 유전 특성 (Piezoelectric and Dielectric Characteristics of Low Temperature Sintering PNW-PMN-PZT Ceramics with the Amount of $CaCO_3$ Addition)

  • 이상호;이창배;정광현;류주현;박창엽;정영호
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2004년도 추계학술대회 논문집 Vol.17
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    • pp.421-424
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    • 2004
  • In this study, in order to develop low temperature sintering ceramics for ultrasonic vibrator, PNW-PMN-PZT system ceramics were manufactured with the amount of $CaCO_3$ addition and their piezoelectric, dielectric and microstructural characteristics were investigated. $CaCO_3$ addition to PNW-PMN-PZT basic composition was proved to be capable of sintering the ceramics at temperature below $1000^{\circ}C$ due to the effect of $Li_2CO_3-CaCO_3$ liquid phase. However, with increasing the amount of $CaCO_3$ addition, the second phase was appeared. As the results, electromechanical coupling coefficient (kp) and dielectric constant $(\epsilon_r)$ decreased. Taking into consideration electromechanical coupling coefficient (kp) of 0.49, mechanical quality factor (Qm) of 1396, dielectric constant $(\epsilon_r)$ of 1300 and density of $7.78[g/cm^2]$, it was concluded that the 0.25wt% $CaCO_3$ addition composition ceramics sintered at $920^{\circ}C$ was suitable for ultrasonic vibrator application.

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MICROMAGNETISM OF HARD AND SOFT MAGNETIC MATERIALS

  • Kronmuller, Helmut
    • 한국자기학회지
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    • 제5권5호
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    • pp.366-371
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    • 1995
  • High performance magnetic materials are characterized by the combination of outstanding magnetic properties and optimized microstructures, e.g., nanocrystalline composites of multilayers and small particle systems. The characteristic parameters of the hysteresis loops of these materials vary over more than a factor of $10^{6}$ with optimum values for the coercive field of several Tesla and permeabilities of $10^{6}$. Within the framework of the computational micromagnetism (nanomagnetism) using the finite element method the upper and lower bounds of the coercive field of different types of grain ensembles and multilayers have been determined. For the case of nanocrystalline composites the role of grain size, exchange and dipolar coupling between grains and the degree of grain alignment will be discusses in detail. It is shown that the largest coercivities are obtained for exchange decoupled grains, whereas remanence enhancing requires exchange coupled grains below 20 nm. For composite permanent magnets based on $Nd_{2}Fe_{14}B$ with an amount of ~ 50% soft $\alpha$-Fe-phase coercivities of ${\mu}_{0}H_{c}=0.75\;T$, a remanence of 1.5 T and an energy product of $400\;kJ/m^{3}$ is expected. In nanocrystalline systems the temperature dependence of the coercivity is well described by the relation ${\mu}_{0}H_{c}=(2\;K_{1}/M_{s}){\alpha}-N_{eff}{\mu}_{0}M_{s}$, where the microstructural parameters $\alpha$ and $N_{eff}$ take care of the short-range perturbations of the anisotropy and $N_{eff}$ is related to the long-range dipolar interactions. $N_{eff}$ is found to follow a logarithmic grain size size dependence ${\mu}_{0}H_{c}=(2\;K_{1}/M_{s}){\alpha}-N_{eff}(\beta1nD){\mu}_{0}M_{s}$. Several trends how to achieve the ideal situation $\alpha$->1 and $N_{eff}$->1->0 will be discussed.

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Pilot Plant를 이용한 600 MPa급 내진용 철근들의 제조, 미세조직과 기계적 특성 비교 (Microstructure and Mechanical Properties of 600 MPa-Grade Seismic Resistant Reinforced Steel Bars Fabricated by a Pilot Plant)

  • 홍태운;황병철
    • 한국재료학회지
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    • 제29권6호
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    • pp.349-355
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    • 2019
  • This study deals with the microstructure and tensile properties of 600 MPa-grade seismic reinforced steel bars fabricated by a pilot plant. The steel bar specimens are composed of a fully ferrite-pearlite structure because they were air-cooled after hot-rolling. The volume fraction and interlamellar spacing of the pearlite and the ferrite grain size decrease from the center region to the surface region because the surface region is more rapidly cooled than the center region. The A steel bar specimenwith a relatively high carbon content generally has a higher pearlite volume fraction and interlamellar spacing of pearlite and a finer ferrite grain size because increasing the carbon content promotes the formation of pearlite. As a result, the A steel bar specimen has a higher hardness than the B steel bar in all the regions. The hardness shows a tendency to decrease from the center region to the surface region due to the decreased pearlite volume fraction. On the other hand, the tensile-to-yield strength ratio and the tensile strength of the A steel bar specimen are higher than those of the B steel bar with a relatively low carbon content because a higher pearlite volume fraction enhances work hardening. In addition, the B steel bar specimen has higher uniform and total elongations because a lower pearlite volume fraction facilitates plastic deformation caused by dislocation slip.

Photovoltaic Properties of Perovskite Solar Cells According to TiO2 Particle Size

  • Kim, Kwangbae;Lee, Hyeryeong;Song, Ohsung
    • 한국재료학회지
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    • 제29권5호
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    • pp.282-287
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    • 2019
  • The photovoltaic properties of $TiO_2$ used for the electron transport layer in perovskite solar cells(PSCs) are compared according to the particle size. The PSCs are fabricated and prepared by employing 20 nm and 30 nm $TiO_2$ as well as a 1:1 mixture of these particles. To analyze the microstructure and pores of each $TiO_2$ layer, a field emission scanning electron microscope and the Brunauer-Emmett-Teller(BET) method are used. The absorbance and photovoltaic characteristic of the PSC device are examined over time using ultraviolet-visible-near-infrared spectroscopy and a solar simulator. The microstructural analysis shows that the $TiO_2$ shape and layer thicknesses are all similar, and the BET analysis results demonstrate that the size of $TiO_2$ and in surface pore size is very small. The results of the photovoltaic characterization show that the mean absorbance is similar, in a range of about 400-800 nm. However, the device employing 30 nm $TiO_2$ demonstrates the highest energy conversion efficiency(ECE) of 15.07 %. Furthermore, it is determined that all the ECEs decrease over time for the devices employing the respective types of $TiO_2$. Such differences in ECE based on particle size are due to differences in fill factor, which changes because of changes in interfacial resistance during electron movement owing to differences in the $TiO_2$ particle size, which is explained by a one-dimensional model of the electron path through various $TiO_2$ particles.

Cu2ZnSn(S,Se)4 Thin Film Solar Cells Fabricated by Sulfurization of Stacked Precursors Prepared Using Sputtering Process

  • Gang, Myeng Gil;Shin, Seung Wook;Lee, Jeong Yong;Kim, Jin Hyeok
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.97-97
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    • 2013
  • Recently, Cu2ZnSn(S,Se)4 (CZTSS), which is one of the In- and Ga- free absorber materials, has been attracted considerable attention as a new candidate for use as an absorber material in thin film solar cells. The CZTSS-based absorber material has outstanding characteristics such as band gap energy of 1.0 eV to 1.5 eV, high absorption coefficient on the order of 104 cm-1, and high theoretical conversion efficiency of 32.2% in thin film solar cells. Despite these promising characteristics, research into CZTSS based thin film solar cells is still incomprehensive and related reports are quite few compared to those for CIGS thin film solar cells, which show high efficiency of over 20%. I will briefly overview the recent technological development of CZTSS thin film solar cells and then introduce our research results mainly related to sputter based process. CZTSS thin film solar cells are prepared by sulfurization of stacked both metallic and sulfide precursors. Sulfurization process was performed in both furnace annealing system and rapid thermal processing system using S powder as well as 5% diluted H2S gas source at various annealing temperatures ranging from $520^{\circ}C$ to $580^{\circ}C$. Structural, optical, microstructural, and electrical properties of absorber layers were characterized using XRD, SEM, TEM, UV-Vis spectroscopy, Hall-measurement, TRPL, etc. The effects of processing parameters, such as composition ratio, sulfurization pressure, and sulfurization temperature on the properties of CZTSS absorber layers will be discussed in detail. CZTSS thin film solar cell fabricated using metallic precursors shows maximum cell efficiency of 6.9% with Jsc of 25.2 mA/cm2, Voc of 469 mV, and fill factor of 59.1% and CZTS thin film solar cell using sulfide precursors shows that of 4.5% with Jsc of 19.8 mA/cm2, Voc of 492 mV, and fill factor of 46.2%. In addition, other research activities in our lab related to the formation of CZTS absorber layers using solution based processes such as electro-deposition, chemical solution deposition, nano-particle formation will be introduced briefly.

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NiO-Doped Pb(Ni$_{1}$3/Nb$_{2}$3/)O$_3$-PbTiO$_3$-PbZr$_3$-O세라믹스의 전기 및 기계적 특성에 관한 연구 (Electrical and mechanical properties of NiO doped Pb(Ni$_{1}$3/Nb$_{2}$3/)O$_3$-PbTiO$_3$-PbZrO$_3$-ceramics)

  • 나은상;김윤호;최성철
    • 한국결정성장학회지
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    • 제10권3호
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    • pp.245-251
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    • 2000
  • Pb($(Ni_{1/3}Nb_{2/3})O_3-PbTiO_3-PbZrO_3$세라믹스에서 NiO첨가에 따른 유전, 압전 및 기계적 특성의 변화를 연구하였다. Columbite precursor법을 사용하여 분말을 제조 후 공기중에서 $1100^{\circ}C$~$1250^{\circ}C$의 온도로 2시간 소결하여 시편을 제조하였다. $1150^{\circ}C$이하 온도에서 소결한 시편에서는 NiO를 1 mol% 첨가시까지 유전상수와 압전상수가 증가하였으나 첨가량이 그 이상 증가함에 따라 감소하였는데 이는 NiO가 소결조제 역할을 한 것으로 보여진다. 그러나 $1200^{\circ}C$ 이상 온도에서 소결한 시편에서는 NiO 첨가량 증가에 따라 유전상수와 전기기계결합계수가 감소하였으며, 기계적품질계수는 증가하였다. 경도 및 파괴인성은 1 mol% 첨가시 최대 값을 보이다가 그 이후 감소하였다. NiO 첨가 PNN-PT-PZ 세라믹스의 전기적 및 기계적 특성은 결정립크기, 소결밀도 및 2차상의 양 등의 미세구조적 요소와 긴밀한 관계가 있음을 보여준다.

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복합전이금속(Ni, Co, Mn) 기반 스피넬계 산화물의 소결 거동 및 온도센서 특성 연구 (Sintering behavior and electrical properties of transition metal (Ni, Co, Mn) based spinel oxides for temperature sensor applications)

  • 소영희;이은서;이진영;민성욱;이빈;김형태
    • 한국결정성장학회지
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    • 제34권2호
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    • pp.73-77
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    • 2024
  • 스피넬계 산화물 중 (Nix, Mny, Co3-x-y)O4(NMC)는 부온도계수 온도센서 소재로 활용되어 전기자동차용 배터리 관리 시스템을 포함한 다양한 산업적 응용이 가능하다. 일반적으로 NMC는 Ni, Mn, Co 화합물 분말을 이용하여 고상반응법을 통해 제조되는데 이 중 소결 공정을 통한 치밀화 과정이 온도센서 소재의 온도에 따른 전기적 특성을 결정하는 중요한 인자로 알려져 있다. 본 연구에서는 NMC 펠렛을 고상반응법을 통해 제조하고 결정구조 및 미세구조를 관찰하였다. 또한, 소결 과정 동안의 치밀화 거동 분석을 위한 활성화 에너지를 도출하였다. 분석 결과에 따르면, NMC 펠렛의 상온 저항은 10.03 Kohm이었으며 센서민 감도인 B-value는 3601.8 K로 다양한 산업군에 온도센서로 적용이 가능할 것으로 기대된다. 또한, 치밀화를 위한 활성화 에너지는 273.3 ± 0.4kJ/mol로 도출되었으며, 이는 소결 과정의 열역학적 특성을 이해하는데 중요한 정보를 제공할 것으로 기대된다.