• 제목/요약/키워드: solid polymer electrolytes

검색결과 84건 처리시간 0.026초

LiAlH4-PVDF 전해질 복합체의 열확산 및 전기화학적 특성평가 (Evaluation of Thermal Diffusivity and Electrochemical Properties of LiAlH4-PVDF Electrolyte Composites)

  • 황준현;홍태환
    • 한국수소및신에너지학회논문집
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    • 제33권5호
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    • pp.574-582
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    • 2022
  • A lithium-ion battery exhibits high energy density but has many limitations due to safety issues. Currently, as a solution for this, research on solid state batteries is attracting attention and is actively being conducted. Among the solid electrolytes, sulfide-based solid electrolytes are receiving much attention with high ion conductivity, but there is a limit to commercialization due to the relatively high price of lithium sulfide, which is a precursor material. This study focused on the possibility of relatively inexpensive and light lithium hydride and conducted an experiment on it. In order to analyze the characteristics of LiAlH4, ion conductivity and thermal stability were measured, and a composites mixed with PVDF, a representative polymer electrolyte, was synthesized to confirm a change in characteristics. And metallurgical changes in the material were performed through XRD, SEM, and BET analysis, and ion conductivity and thermal stability were measured by EIS and LFA methods. As a result, Li3AlH6 having ion conductivity higher than LiAlH4 is formed by the synthesis of composite materials, and thus ion conductivity is slightly improved, but thermal stability is rapidly degraded due to structural irregularity.

염료 감응 태양전지를 위한 고급 유기 고분자 - 무기 복합 겔형 전해질의 제조와 특성분석 (Preparation and Characterization of Advanced Organic Polymer - Inorganic Composite Gel Electrolyte for Dye-sensitized Solar Cells)

  • 모하메드 샤히르 아크탈;박정근;김의연;이현철;양오봉
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2009년도 추계학술대회 논문집
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    • pp.350-354
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    • 2009
  • In this work, polymer - inorganic composites have prepared using polymer such as polyethylene glycol (PEG)/poly (methyl methacrylate, PMMA) and inorganic nanofillers materials such as TiO2 nanotubes (TiNTs)/carbon nanotubes (CNTs). The extensive structural, morphological and ionic properties revealed that the high surface area and tubular feature of nanofillers improved the interaction and cross-linking to polymer matrix which is significantly enhanced the ionic conductivity and electrical properties of composite electrolytes. Comparably high conversion efficiency ~4.5% has been observed by using the newly prepared PEG-TiNTs composite solid electrolyte as compared with PMMA-CNTs electrolyte based DSSCs (~3%). The detailed comparative properties would be discussed in term of their structural, morphology, ionic and photovoltaic properties.

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Electrochemical Properties of 1,1-Dialkyl-2,5-bis(trimethylsilylethynyl)siloles as Anode Active Material and Solid-state Electrolyte for Lithium-ion Batteries

  • Hyeong Rok Si;Young Tae Park
    • 대한화학회지
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    • 제67권6호
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    • pp.429-440
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    • 2023
  • 1,1-Dialkyl-2,5-bis(trimethylsilylethynyl)-3,4-diphenylsiloles (R=Et, i-Pr, n-Hex; 3a-c) were prepared and utilized as anode active materials for lithium-ion batteries; 3a was also used as a filler for the solid-state electrolytes (SSE). Siloles 3a-c were prepared by substitution reactions in which the two bromine groups of 1,1-dialkyl-2,5-dibromo-3,4-diphe- nylsiloles, used as precursors, were substituted with trimethylsilylacetylene in the presence of palladium chloride, copper iodide, and triphenylphosphine in diisopropylamine. Among siloles 3a-c, 3a had the best electrochemical properties as an anode material for lithium-ion batteries, including an initial capacity of 758 mAhg-1 (0.1 A/g), which was reduced to 547 mAhg-1 and then increased to 1,225 mAhg-1 at 500 cycles. A 3a-composite polymer electrolyte (3a-CPE) was prepared using silole 3a as an additive at concentrations of 1, 2, 3, and 4 wt.%. The 2 wt.% 3a-CPE composite afforded an excellent ionic conductivity of 1.09 × 10-3 Scm-1 at 60℃, indicating that silole 3a has potential applicability as an anode active material for lithium-ion batteries, and can also be used as an additive for the SSE of lithium-ion batteries.

리튬 유황전지용 폴리우레탄 고분자 전해질의 전기화학적 특성 (Electrochemical Characteristics of Polyurethane-based Polymer Electrolyte for Lithium Sulfur Battery)

  • 김형주;신준호;김종화;김기원;안효준;안주현
    • 전기화학회지
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    • 제5권2호
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    • pp.47-51
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    • 2002
  • 본 연구에서는 높은 인장강도와 탄성력을 가지는 다공성 폴리우레탄(polyurethane, PU)을 지지체(matrix)로 이용하고, 유기 전해액 ethylene carbonate(EC), propylene carbonate(PC), tetraethylene glycol dimethylether(TG)와 1M $LiCF_3SO_3$를 부피비 1:1 비율로 혼합하여 액체 전해액을 제조하였으며, 높은 이론용량을 가지는 Li/S전지에 적용하여 전기 화학적 특성을 조사하였다. 1M $LiCF_3SO_3$에 TG를 첨가할 경우 유기 전해액의 함침량이 약 $750\%$ 증가하였으며 방전용량$(1065mAh/g{\cdot}sulfur)$ 및 사이클 특성이 가장 우수하였다. 1M $LiCF_3SO_3$에 TG/EC(v/v,1:1) 및 PC/EC(v/v,1:1)를 첨가한 경우 이온 전도도는 각각 $3.15\times10^{-3}(S/cm)$$3.18\times10^{-3}(S/cm)$로 나타났다.

Grafting-onto법에 의한 poly(MMA-co-PEGMA) 전해질의 합성과 이온전도도에 대한 조성의 영향 (Synthesis of Poly(MMA-co-PEGMA) Electrolytes by Grafting-onto Method and Effect of Composition on Ionic Conductivities)

  • 이주형;류상욱
    • 전기화학회지
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    • 제16권4호
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    • pp.198-203
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    • 2013
  • 본 실험에서는 MMA와 tBMA의 공중합체를 합성하고, tert-butyl 그룹의 가수분해를 선택적으로 유도하여 poly(MMA-co-MA)를 제조하였다. 또한 말단에 에폭시기를 함유한 다양한 분자량의 PEO와 MA와의 grafting-onto 커플링 반응을 통해 같은 주사슬을 가지지만 부사슬의 길이가 다른 poly(MMA-co-PEGMA)를 합성하여 조성이 이온전도도에 미치는 영향을 평가하였다. AC-impedance로 측정한 상온 이온전도도는 MMA의 몰분율이 82%에서 $5.11{\times}10^{-8}Scm^{-1}$의 값이 얻어진 반면, 48%에서는 $1.88{\times}10^{-6}Scm^{-1}$로서 많은 PEGMA에서 높게 관찰되었다. 또한 에폭시기를 함유한 PEO의 분자량에 따라 이온전도도의 차이가 발생하는데, grafting-onto 법의 입체적 장애가 원인으로 고려되었다. 한편, 합성된 poly(MMA-co-PEGMA) 고분자 전해질은 상온에서 6V까지 우수한 전기화학적 안정성을 보여주었다.

Poly(ethylene oxide) 고분자 전해질의 온도, Li 염의 종류 및 가소제 첨가에 따른 전도도 특성 (The Conductivity Properties of Poly(ethylene oxide) Polymer Electrolyte as a Function of Temperature, Kinds of Lithium Salt and Plasticizer Addition)

  • 김종욱;진봉수;문성인;구할본;윤문수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1994년도 하계학술대회 논문집 C
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    • pp.1229-1232
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    • 1994
  • The purpose of this study is to research and develop solid polymer electrolyte(SPE) for Li secondary battery. This paper describes the effects of lithium salts, plasticizer addition and temperature dependence of conductivity of PEO electrolytes. Polyethylene oxide(PEO) based polymer electrolyte films were prepared by solution casting an acetonitrile solution of preweighed PEO and Li salt. After solvent evaporation, the electrolyte films were vacuum-dried at $60^{\circ}C$ for 48h, the thickness of the films were $90{\sim}110{\mu}m$. The conductivity properties of prepared PEO electrolytes are summarized as follows. PEO electrolyte complexed with $LiClO_4$ shows the better conductivity of the others. $PEO-LiClO_4$ electrolyte when $EO/Li^+$ ratio is 8, showed the best conductivity. Optimum operating temperature of PEO electrolyte is $60^{\circ}C$. By adding propylene carbonate and ethylene carbonate to $PEO-LiClO_4$ electrolyte, its conductivity was higher than $PEO-LiClO_4$ without those. Also $PEO_8LiClO_4$ electrolyte remains static up to 4.5V vs. $Li/Li^+$.

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SnO2 기반 고체상의 투과도 가변 소자 제조 (Fabrication of SnO2-based All-solid-state Transmittance Variation Devices)

  • 신동균;서유석;이진영;박종운
    • 반도체디스플레이기술학회지
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    • 제19권3호
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    • pp.23-29
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    • 2020
  • Electrochromic (EC) device is an element whose transmittance is changed by electrical energy. Coloring and decoloring states can be easily controlled and thus used in buildings and automobiles for energy saving. There exist several types of EC devices; EC using electrolytes, polymer dispersed liquid crystal (PDLC), and suspended particle device (SPD) using polarized molecules. However, these devices involve solutions such as electrolytes and liquid crystals, limiting their applications in high temperature environments. In this study, we have studied all-solid-state EC device based on Tin(IV) oxide (SnO2). A coloring phase is achieved when electrons are accumulated in the ultraviolet (UV)-treated SnO2 layer, whereas a decoloring mode is obtained when electrons are empty there. The UV treatment of SnO2 layer brings in a number of localized states in the bandgap, which traps electrons near the conduction band. The SnO2-based EC device shows a transmittance of 70.7% in the decoloring mode and 41% in the coloring mode at a voltage of 2.5 V. We have achieved a transmittance change as large as 29.7% at the wavelength of 550 nm. It also exhibits fast and stable driving characteristics, which have been demonstrated by the cyclic experiments of coloration and decoloration. It has also showed the memory effects induced by the insulating layer of titanium dioxide (TiO2) and silicone (Si).

Synthesis And Ionic Conductivity of Siloxane Based Polymer Electrolytes with Propyl Butyrate Pendant Groups

  • Jalagonia, Natia;Tatrishvili, Tamara;Markarashvili, Eliza;Aneli, Jimsher;Grazulevicius, Jouzas Vidas;Mukbaniani, Omar
    • Korean Chemical Engineering Research
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    • 제54권1호
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    • pp.36-43
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    • 2016
  • Hydrosilylation reactions of 2.4.6.8-tetrahydro-2.4.6.8-tetramethylcyclotetrasiloxane with allyl butyrate catalyzed by Karstedt's, $H_2PtCl_6$ and Pt/C catalyst were studied and 2.4.6.8-tetra (propyl butyrate)-2.4.6.8-tetramethylcyclotetrasiloxane was obtained. The reaction order, activation energies and rate constants were determined. Ringopening polymerization of 2.4.6.8-tetra (propyl butyrate)-2.4.6.8-tetramethylcyclotetrasiloxane in the presence of $CaF_2$, LiF, KF and anhydrous potassium hydroxide in $60-70^{\circ}C$ temperature range was carried out and methylsiloxane oligomers with regular arrangement of propyl butyrate pendant groups were obtained. The synthesized products were studied by FTIR and NMR spectroscopy. The polysiloxanes were characterized by wide-angle X-ray, gel-permeation chromatography and DSC analyses. Via sol-gel processes of oligomers doped with lithium trifluoromethylsulfonate or lithium bis (trifluoromethylsulfonyl)imide, solid polymer electrolyte membranes were obtained. The dependences of ionic conductivity of obtained polyelectrolytes on temperature and salt concentration were investigated, and it was shown that electric conductivity of the polymer electrolyte membranes at room temperature changed in the range $3.5{\times}10^{-4}{\sim}6.4{\times}10^{-7}S/cm$.

MCM-41/Po1y(ethylene oxide) 복합체로 구성된 고분자 전해질의 제조와 전기화학적 특성 (Preparation and Electrochemical Characteristics of Polymer Electrolyte Based on MCM-41/Poly(ethylene oxide) Composites)

  • 김석;강진영;이성구;이재락;박수진
    • 폴리머
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    • 제29권4호
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    • pp.403-407
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    • 2005
  • 본 연구에서는 mobil crystalline material-41(MCM-41)의 함량 변화에 따른 고체 고분자 전해질(solid polymer electrolyte, SPE)의 이온전도도의 변화를 고찰하기 위하여, poly(ethylene oxide)(PEO), 메조포러스 기공 구조를 가지는 MCM-41 분자체, 그리고 리튬염을 이용하여 SPE를 제조하였다. SPE의 결정화도는 X-선 회절분석(XRD) 및 시차주사열량계(DSC)를 통하여 살펴보았으며, 주파수반응분석(FRA)으로 이온전도도를 측정하여 이온 전도거동을 고찰하였다. 그 결과, MCM-41을 고분자 혼합물에 첨가함에 따라 PEO의 견정성 영역의 성장을 억제할 수 있었으며, 이는 MCM-41이 메조포러스한 구조를 가지고 있기 때문이다. 또한, $P(EO)_{16}LiClO_4$/MCM-41 전해질 복합체의 이온 전도도는 8$wt\%$의 MCM-41을 첨가한 경우 가장 큰 이온전도도를 가지며, 8$wt\%$이상에서는 다소 감소된 이온전도도를 가짐을 관찰할 수 있었다. 이러한 이온전도도의 특성은 MCM-41의 첨가에 따른 고분자의 결정화도 변화와 밀접한 관계를 맺고 있다.

산화물계 고체전해질 함량에 따른 PEO 기반 복합전해질 전기화학 성능 연구 (Study on Electrochemical Performances of PEO-based Composite Electrolyte by Contents of Oxide Solid Electrolyte)

  • 이명주;김주영;오지민;김주미;김광만;이영기;신동옥
    • 전기화학회지
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    • 제21권4호
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    • pp.80-87
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    • 2018
  • 웨어러블 디바이스, 전기자동차와 에너지저장시스템에 대한 전력 수요가 증가함에 따라 리튬이온 전지에 있어서 안전성은 가장 중요한 요소가 되었다. 이러한 문제를 해결하기 위해 가연성의 유기 액체전해질이 불연성의 고체전해질로 대체된 전고체 전지를 제조하려는 연구들이 진행되고 있다. 그러나 고체전해질은 자체 이온전도도가 상대적으로 낮고 전극/전해질 계면에서 높은 저항이 발생하므로 실질적인 활용에 제약이 있었다. 이에 유무기 소재로 구성된 복합전해질은 고체전해질의 단점을 극복할 수 있는 대안으로 떠오르고 있다. 본 연구에서는 PEO 전해질과 LLZO 고체전해질을 복합화하여 전해질을 제조하였고, LLZO 고체전해질 함량에 따라 결정성, 형상 및 전기화학 성능 분석을 진행하였다. 결과로부터 PEO 전해질 내에 LLZO 고체전해질의 최적 함량 및 균일한 분포가 전체 복합전해질의 이온전도도 향상에 중요한 요소임을 확인하였다.