• 제목/요약/키워드: Solid-electrolyte

검색결과 698건 처리시간 0.028초

졸-겔 코팅에 의한 저온형 고체산화물 연료저지용 전해질막의 합성 및 특성 (Synthesis of Electrolyte Films for Low-Temperature Solid Oxide Fuel Cells by Sol-Gel Coating and Their Characteristics)

  • 현상훈;김승구;장운석
    • 한국세라믹학회지
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    • 제36권4호
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    • pp.391-402
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    • 1999
  • Characteristics of composite electrolytes which were prepared by coating a thin film of YSZ (yttria sta-bilized zirconia : (ZrO2)0.92 (Y2O3)0.08) on YDC (yttria doped ceria : Ce0.8Y0.2O1.9) with mixed conductivity have been investigated in order to develop the low-temperature solid oxide fuel cell. The thickness (t) of spin-coated YSZ thin films after the heat-treatment at 600$^{\circ}C$ was increased proportionally to the sol con-centrations (C) while the decrease in its thickness with the spin rate ($\omega$) could be expressed in the e-quation of ln t=9.49-0.53 ln $\omega$(0.99mol//s sol conc.) When the sol concentration and the spin rate being less than 0.99 mol/l and higher than 1000 rpm respectively reliable YSZ/YDC composite electrolytes could be obtained by multi-coating although several micro-cracks were observed in singly coated YSZ film surfaces. The dense YSZ film with a 1$\mu\textrm{m}$ thickness was prepared by coating of 0.99 mol/l YSZ sol five-times at 2000 rpm followed by heat-treatment at 1400$^{\circ}C$ for 2h, The adhesion between YSZ film and YDC substrate was found to be very good. The open circuit voltages of H2/O2 single cell with YSZ/YDC composite electrolytes were 0.79∼0.82 V at 800$^{\circ}C$ and 0.75∼0.77V at 900$^{\circ}C$ The open circuit voltage was inversely proportioned to the thickness ratio of YSZ thin film (1$\mu\textrm{m}$) to YDC substrate(0.28-2.22 mm)

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석탄순환형 연료전지 모사시스템용 석탄전환율 측정 및 분석법개발에 관한 연구 (Measurement and Analysis of Coal Conversion Efficiency for a Coal Recirculating Fuel Cell Simulator)

  • 이상초;김치환;황문경;김민성;김규보;전충환;송주헌
    • 한국수소및신에너지학회논문집
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    • 제23권5호
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    • pp.503-512
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    • 2012
  • There is a new power generation system such as direct coal fuel cell (DCFC) with a solid oxide electrolyte operated at relatively high temperature. In the system, it is of great importance to feed coal continuously into anodic electrode surface for its better contact, otherwise it would reduce electrochemical conversion of coal. For that purpose, it is required to improve the electrochemical conversion efficiency by using either rigorous mixing condition such as fluidized bed condition or just by recirculating coal particle itself successively into the reaction zone of the system. In this preliminary study, we followed the second approach to investigate how significantly particle recycle would affect the coal conversion efficiency. As a first phase, coal conversion was analyzed and evaluated from the thermochemical reaction of carbon with air under particle recirculating condition. The coal conversion efficiency was obtained from raw data measured by two different techniques. Effects of temperature and fuel properties on the coal conversion are specifically examined from the thermochemical reaction.

전착법과 담금법에 의한 음극지지형 SOFC 지르코니아 전해질막 제조 (Preparation of Electrolyte Thin Film for Anode Support Type Solid Oxide Fuel Cells by Electrophoretic Deposition and Dip-Coating)

  • 김상우;이병호;손용배;송휴섭
    • 한국세라믹학회지
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    • 제36권8호
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    • pp.791-798
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    • 1999
  • 다공성 NiO-YSZ 기판위에 전착법(EPD; Electrophoretic Deposition)법과 담금(Dip-coating)법에 의해 음극지지형 고체연료전지용 이트리아 안정화 지르코니아 박막 제조법을 연구하였다. 이를 위해 슬러리 농도 및 시간에 따른 박막의 무게, 박막의 결함 및 미세구조변화에 영향을 주는 제조조건들을 살펴 봄으로써 전착법과 담금법의 차이를 보았다. 담금법에서는 막생성 초기인 30초까지 막의 무게가 증가하지만 그 후에는 탈락이 일어나 시간을 증가하여도 막의 무게가 오히려 감소하였다. 전착법에서는 임계 인가전류 이상에서 시간에 따라 막의 무게가 증가하고 균일하고 치밀한 막이 형성하였다 전장이 매우 낮은 0.035 mA/$cm^2$ 의 정전류를 120초 이상 장시간 인가하면 막의 흘러내림(sagging)으로 인한 결함이 발생하였다. 전착법에 의해 균일하고도 치밀하게 가스 누출성이 없는 음극지지형 고체산화물 연료전지에 적합한 전해질 박막을 제조할 수 있었다.

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콜로이드 계면화학을 이용한 저온형 고체전해질용 $CeO_2$계 복합 산화물의 소결체 제조 (The Preparation for Sintered Body of $CeO_2$ Based Complex Oxide in Low Temperature Solid Oxide Fuel Cells Using Colloidal Surface Chemistry)

  • 황용신;최성철
    • 한국세라믹학회지
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    • 제37권7호
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    • pp.705-712
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    • 2000
  • In this study, the dispersion stability of CeO2 based complex oxide was studied, and density, porosity, and microstructure of green body were investigated using colloid surface chemistry to manufacture the Gd2O3 doped CeO2 solid electrolyte in an aqueous system. To prepare the stable slurry for slip casting, the dispersion stability was examined as a function of pH using ESA(electrokinetic sonic anplitude) analysis. The dynamic mobility of particles was enhanced with anionic and cationic dispersant were added the amount of 0.5wt% respectively, but pH value in slurries didn't move to below 6.0 because of the influence of dopants. This phenomenon also appeared in the CeO2-Y2O3 and CeO2-Sm2O3 systems, so it could be inferred that rare earth dopants such as Gd2O3, Sm2O3 and Y2O3 not only have the similar motion with changing pH in an aqueous system but also can be dissolved in the range of pH 6.0∼6.5. In CeO2-Gd2O3 system, when the anionic dispersant was added the amount of 0.5wt% and pH value in slurries was fixed at 9.5, the green body density was 4.07g/㎤, and the relative density of sintered body was 95.2%. It could be inferred from XRD analysis that Gd3+ substituted into Ce4+ site because there was no free Gd2O3 peak.

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Improved Uniformity in Resistive Switching Characteristics of GeSe Thin Film by Ag Nanocrystals

  • Park, Ye-Na;Shin, Tae-Jun;Lee, Hyun-Jin;Lee, Ji-Soo;Jeong, Yong-Ki;Ahn, So-Hyun;Lee, On-You;Kim, Jang-Han;Nam, Ki-Hyun;Chung, Hong-Bay
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.237.2-237.2
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    • 2013
  • ReRAM cell, also known as conductive bridging RAM (CBRAM), is a resistive switching memory based on non-volatile formation and dissolution of conductive filament in a solid electrolyte [1,2]. Especially, Chalcogenide-based ReRAM have become a promising candidate due to the simple structure, high density and low power operation than other types of ReRAM but the uniformity of switching parameter is undesirable. It is because diffusion of ions from anode to cathode in solid electrolyte layer is random [3]. That is to say, the formation of conductive filament is not go through the same paths in each switching cycle which is one of the major obstacles for performance improvement of ReRAM devices. Therefore, to control of nonuniform conductive filament formation is a key point to achieve a high performance ReRAM. In this paper, we demonstrated the enhanced repeatable bipolar resistive switching memory characteristics by spreading the Ag nanocrystals (Ag NCs) on amorphous GeSe layer compared to the conventional Ag/GeSe/Pt structure without Ag NCs. The Ag NCs and Ag top electrode act as a metal supply source of our devices. Excellent resistive switching memory characteristics were obtained and improvement of voltage distribution was achieved from the Al/Ag NCs/GeSe/Pt structure. At the same time, a stable DC endurance (>100 cycles) and an excellent data retention (>104 sec) properties was found from the Al/Ag NCs/GeSe/ Pt structured ReRAMs.

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고체 전해질 층의 어닐링 온도가 고분자 멤리스터의 전기적 특성에 미치는 영향 (Effect of annealing temperature of solid electrolyte layer on the electrical characteristics of polymer memristor)

  • 김우석;노은경;권진혁;김민회
    • 전기전자학회논문지
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    • 제26권4호
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    • pp.705-709
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    • 2022
  • Poly(vinylidene fluoride-trifluoroethylene)(P(VDF-TrFE)) 고체 전해질 층의 어닐링 온도가 고분자 멤리스터의 전기적 특성에 미치는 영향을 분석하였다. 형태적 분석에서 100℃ 어닐링 온도를 갖는 P(VDF-TrFE) (100P(VDF-TrFE)) 박막 대비 200℃ 어닐링 온도를 갖는 P(VDF-TrFE) (200P(VDF-TrFE)) 박막의 표면 거칠기가 약 5배 크고 두께는 약 20% 작은 것으로 나타났다. 100P(VDF-TrFE)를 갖는 멤리스터 (M100) 대비 200P(VDF-TrFE) 멤리스터 (M200)의 set voltage는 약 50% 감소하였고, reset voltage의 크기는 약 30% 증가하였다. 또한, M200이 M100보다 더 나은 메모리 유지 특성을 갖는 것으로 나타났다. 이러한 차이는 M100 대비 M200 내부의 강한 국소 전기장 때문인 것으로 판단된다. 본 연구는 고분자 멤리스터의 어닐링 온도의 중요성을 제시함에 의의가 있다.

제일원리계산을 이용한 리튬이차전지 양극활물질 LiNiO2의 표면 특성에 관한 연구 (First-Principles Investigation of the Surface Properties of LiNiO2 as Cathode Material for Lithium-ion Batteries)

  • 최희성;이맹은
    • 전기화학회지
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    • 제16권3호
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    • pp.169-176
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    • 2013
  • 현재 이차전지에서 사용중인 양극활물질은 구조 안정성이 높은 층상구조(Layered Structure)의 리튬 금속 산화물(Solid State Lithium Oxide Compounds)이 주로 사용된다. 최근에는 리튬이차전지의 성능향상을 위해서 음극활물질과 전해질 사이의 계면뿐만 아니라, 양극활물질과 전해질 사이의 계면에 관한 연구가 활발히 진행되고 있으며, 이러한 계면의 연구를 위해서는 음극활물질 뿐만 아니라, 양극활물질의 표면에 관한 연구도 선행적으로 이루어져야 하는 상황이다. 대표적인 리튬금속 산화물질인 니켈산리튬($LiNiO_2$)과 코발트산리튬($LiCoO_2$)은 서로 매우 유사한 구조를 갖는 층상구조의 양극활물질이다. 코발트산리튬이 다양한 실험적, 이론적 연구가 진행된 반면에, 니켈산 리튬은 실험적 연구에 비해서 이론적 연구가 부족하다. 따라서, 본 연구에서는 니켈산리튬의 X-선 회절계 측정 결과(XRD data)에 나오는9개의 표면 방향을 범밀도함수이론(Density Functional Theory)을 이용하여 니켈산리튬 표면의 표면 에너지를 계산하였다. 니켈산리튬의 X-선 회절계 측정 결과(XRD data)에서는 (003), (104), (101), (110) 결정 등등이 순차적으로 주요하게 존재하는 것으로 확인되었다. 그러나 시뮬레이션을 이용한 각각의 표면 에너지 계산 결과, X-선 회절계 측정 결과와 다른 순서로 안정한 표면 에너지가 나타나는 결과를 얻었다. 따라서 에너지적으로 안정한 표면이자, X-선 회절계에서 주요하게 나타나는 (104)와 (101) 방향의 니켈산리튬 표면이 많이 노출되어 Li 이온의 충방전시 리튬의 삽입 탈리에 영향을 줄 것으로 예상된다.

Electrochemical properties of all solid state Li/LiPON/Sn-substituted LiMn2O4 thin film batteries

  • Kong, Woo-Yeon;Yim, Hae-Na;Yoon, Seok-Jin;Nahm, Sahn;Choi, Ji-Won
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제40회 동계학술대회 초록집
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    • pp.409-409
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    • 2011
  • All solid-state thin film lithium batteries have many applications in miniaturized devices because of lightweight, long-life, low self-discharge and high energy density. The research of cathode materials for thin film lithium batteries that provide high energy density at fast discharge rates is important to meet the demands for high-power applications. Among cathode materials, lithium manganese oxide materials as spinel-based compounds have been reported to possess specific advantages of high electrochemical potential, high abundant, low cost, and low toxicity. However, the lithium manganese oxide has problem of capacity fade which caused by dissolution of Mn ions during intercalation reaction and phase instability. For this problem, many studies on effect of various transition metals have been reported. In the preliminary study, the Sn-substituted LiMn2O4 thin films prepared by pulsed laser deposition have shown the improvement in discharge capacity and cycleability. In this study, the thin films of LiMn2O4 and LiSn0.0125Mn1.975O4 prepared by RF magnetron sputtering were studied with effect of deposition parameters on the phase, surface morphology and electrochemical property. And, all solid-state thin film batteries comprised of a lithium anode, lithium phosphorus oxy-nitride (LiPON) solid electrolyte and LiMn2O4-based cathode were fabricated, and the electrochemical property was investigated.

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Effect of Li3BO3 Additive on Densification and Ion Conductivity of Garnet-Type Li7La3Zr2O12 Solid Electrolytes of All-Solid-State Lithium-Ion Batteries

  • Shin, Ran-Hee;Son, Sam-Ick;Lee, Sung-Min;Han, Yoon Soo;Kim, Yong Do;Ryu, Sung-Soo
    • 한국세라믹학회지
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    • 제53권6호
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    • pp.712-718
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    • 2016
  • In this study, we investigate the effect of the$Li_3BO_3$ additive on the densification and ionic conductivity of garnet-type $Li_7La_3Zr_2O_{12}$ solid electrolytes for all-solid-state lithium batteries. We analyze their densification behavior with the addition of $Li_3BO_3$ in the range of 2-10 wt.% by dilatometer measurements and isothermal sintering. Dilatometry analysis reveals that the sintering of $Li_7La_3Zr_2O_{12}-Li_3BO_3$ composites is characterized by two stages, resulting in two peaks, which show a significant dependence on the $Li_3BO_3$ additive content, in the shrinkage rate curves. Sintered density and total ion conductivity of the system increases with increasing $Li_3BO_3$ content. After sintering at $1100^{\circ}C$ for 8 h, the $Li_7La_3Zr_2O_{12}-8$ wt.% $Li_3BO_3$ composite shows a total ionic conductivity of $1.61{\times}10^{-5}Scm^{-1}$, while that of the pure $Li_7La_3Zr_2O_{12}$ is only $5.98{\times}10^{-6}Scm^{-1}$.

비정질 V2O5 중간층 삽입을 통한 고성능 LNMO기반 박막 배터리 개발 (Development of High-Performance LNMO Based Thin-Film Battery through Amorphous V2O5 Interlayer Insertion)

  • 권오혁;김종헌;박준섭;김현석
    • 한국전기전자재료학회논문지
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    • 제35권2호
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    • pp.194-198
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    • 2022
  • All-solid-state thin-film battery can realize the integration of electronic circuits into small devices. However, a high voltage cathode material is required to compensate for the low energy density. Therefore, it is necessary to study all-solid-state thin-film battery based on the high voltage cathode material LNMO. Nevertheless, the electrochemical properties deteriorate due to the problem of the interface between LiNi0.5Mn1.5O4 (LNMO) and the solid electrolyte LiPON. In this study, to solve this problem, amorphous V2O5 was deposited as an interlayer between LNMO and LiPON. We confirmed the possibility of improving cycle performance of LNMO based thin-film battery. We expect that the results of this study can extend the battery lifespan of small devices using LNMO based all-solid-state thin-film battery.