• 제목/요약/키워드: Lithium ionic conductivity

검색결과 148건 처리시간 0.023초

솔-젤 법으로 만든 PEO-LiClO$_4$에 기초한 고분자 전해질의 물성 (Properties of Polymer Electrolytes based on PEO-LiClO$_4$ Matrix Fabricated by Sol-Gel Process)

  • 박영욱;이동성
    • 폴리머
    • /
    • 제27권3호
    • /
    • pp.265-270
    • /
    • 2003
  • 고분자 젤은 높은 이온 전도도를 가지는 대신에 나쁜 기계적 물성 때문에 많은 문제점을 가지고 있다. 다소 낮은 이온 전도도를 나타내면서 기계적, 열적, 화학적, 전기 화학적으로 우수한 특성을 가지는 근식 고체계와, 고분자 복합재료에 대한 많은 연구들이 진행 중에 있다. 본 연구는 PEO-LiClO$_4$(8:1)에 기초한 고체 고분자 전해질에 액체 상의 가소제가 아닌 고체 상으로 가소제의 역할을 하는 세라믹과 고무를 첨가시켜서 이온 전도도와 기계적 물성을 증가시키는 것에 대한 것이다. 이온 전도도는 세라믹 상과 고무상을 도입한 두 가지 경우 모두 ~$10^{-5}$ $cm^{-1}$ / 정도로 비슷하게 나타났는데, 이는 현재까지 연구되어진 것 중 최고의 값을 가지는 것과 비슷했다. 더 높은 이온 전도도를 얻기 위하여 다양한 분자량 (600~8000)을 가진 고분자를 혼합하였고, 염의 함량에 변화를 주었다. 염의 첨가와 첨가된 염의 함량에 따라 높은 결정성을 가지는 PEO가 무정형으로 바뀌는 것을 DSC 곡선을 통해 알 수 있었고, 다양한 함량의 LiClO$_4$를 첨가한 경우 고분자 유동성의 변화를 FT-IR을 통해 알 수 있었다.

Polyoxyalkylene Glycol Acrylate기 Gel Polymer Electrolyte를 적용한 리튬이온폴리머전지의 전기화학적 특성 (Electrochemical Performances of Lithium-ion Polymer Battery with Polyoxyalkylene Glycol Acrylate-based Gel Polymer Electrolyte)

  • 김현수;김성일;나성환;문성인
    • 한국전기전자재료학회논문지
    • /
    • 제18권2호
    • /
    • pp.142-147
    • /
    • 2005
  • In this work, a gel polymer electrolyte (GPE) was prepared using polyoxyalkylene glycol acrylate (POAGA) as a macromonomer LiCoO$_2$/GPE/graphite cells were prepared and their electrochemical properties were evaluated at various current densities and temperatures. The ionic conductivity of the GPE was more than 6.2${\times}$10$^{-3}$ S$.$$cm^{-1}$ / at room temperature. The GPE had good electrochemical stability up to 4.5 V vs. Li/Li$^{+}$. POAGA-based cells were showed good electrochemical performances such as rate capability, low-temperature performance, and cycleability. The cells, also, passed a safety test such as the overcharge and nail-penetration test.t.

리튬이온전지용 Urethane기 겔폴리머전해질에 관한 연구 (A Study on Urethane-Based Gel Polymer Electrolyte for Lithium ion Battery)

  • 김현수;김성일;최관영;문성인;김상필
    • 한국전기전자재료학회논문지
    • /
    • 제15권12호
    • /
    • pp.1033-1038
    • /
    • 2002
  • In this study, urethane acrylate macromer was synthesized and it was used in a gel polymer electrolyte (GPE), and then its electrochemical performances were evaluated. LiCoO$_2$/GPE/graphite cells were Prepared and their performances depending on discharge currents and temperatures were evaluated. The precursor consisting of urethane acrylate (UA), hexanediol dimethacrylate (HDDA) and benzoyl peroxide (BPO) had a low viscosity relatively ionic conductivity of the gel polymer electrolyte with UA at room temperature and -20$\^{C}$ was ca. 4.5 $\times$ 10$\^$-3/S$.$cm$\^$-1/ and 1.7 x 10$\^$-3/ S$.$cm$\^$-1/, respectively GPR was stable electrochemically up to potential of 4.i V vs. Li/Li$\^$+/. LiCoO$_2$/GPE/graphite cells showed good a high-rate and a low-temperature performance.

Electrochemical Properties of Cross-linked Polyurethane Acrylate-Based Gel Polymer Electrolyte

  • Kim, Hyun-Soo;Kim, Sung-Il;Choi, Gwan-Young;Moon, Seong-In;Kim, Sang-Pil
    • 전기화학회지
    • /
    • 제5권4호
    • /
    • pp.197-201
    • /
    • 2002
  • In this study, a gel polymer electrolyte was prepared from urethane acrylate and its electrochemical performances were evaluated. And, $LiCoO_2/GPE/graphite$ cells were prepared and their performances depending on discharge currents and temperatures were evaluated. The precursor containing $5 vol\%$ curable mixture had a low viscosity relatively. Ionic conductivity of the gel polymer electrolyte at room temperature and $-20^{\circ}C$ was ca. $5.9\times10^{-3}S{\cdot}cm^{-1}\;and\;1.7\times10^{-3}S{\cdot}cm^{-1}$, respectively. GPE showed electrochemical stability up to potential of 4.5V vs. $Li/Li^+.LiCoO_2/GPE/graphite$ cell showed a good high-rate and a low-temperature performance.

Ethylene Oxide기를 갖는 Acrylate계 Gel Polymer Electrolyte의 전기화학적 특성에 관한 연구 (A Study on Electrochemical Properties of Acrylate-based Gel Polymer Electrolyte with Ethylene Oxide Group)

  • 김현수;신정한;문성인;오대희
    • 한국전기전자재료학회논문지
    • /
    • 제17권6호
    • /
    • pp.608-614
    • /
    • 2004
  • The gel polymer electrolyte was prepared by radical polymerization using tetra(ethylene glycol) diacrylate and tri(ethylene glycol) dimethacrylate to investigate affect of the number of ethylene oxide. The gel polymer electrolyte showed good electrochemical stability up to 4.5 V vs. Li/Li and high ionic conductivity at various temperatures. The lithium-ion polymer batteries with the gel polymer electrolyte, tetra(ethylene glycol) diacrylate- and tri(ethylene glycol) dimethacrylate-based, also represented good electrochemical performances such as rate capability, low-temperature performances and cycleability. However, the cell with tri(ethylene glycol) dimethacrylate, which has three ethylene oxide, showed better electrochemical performance.

Design of Single Ion Conductive Solid Polymer Electrolytes Utilizing the Characteristics of the Boron Atom

  • Matsumi, Noriyoshi;Ohno, Hiroyuki
    • 한국고분자학회:학술대회논문집
    • /
    • 한국고분자학회 2006년도 IUPAC International Symposium on Advanced Polymers for Emerging Technologies
    • /
    • pp.275-275
    • /
    • 2006
  • A series of organoboron polymer electrolytes were prepared and their ion conductive characteristics was investigated in detail. Alkylborane type polymer electrolytes prepared by hydroboration polymerization exhibited improve lithium transference number due to efficient anion trapping of alkylborane unit. A lithium borate type polymer/salt hybrid was also successfully prepared by dehydrocoupling polymerization of lithium mesitylhydrorate. Ionic conductivity of single ion conductive polymer/salt hybrid was further improved in the case of comb like polymer/boron stabilized imido anion hybrid prepared via polymer reaction of poly(organoboron halide) with hexylamine and PEO monomethylether and subsequent neutralization with lithium hydride.

  • PDF

BF3LiMA를 단량체로 하는 고체 고분자전해질 합성과 전기화학적 특성 (Synthesis and Electrochemical Properties of Solid Polymer Electrolytes Using BF3LiMA as Monomer)

  • 김경찬;류상욱
    • 전기화학회지
    • /
    • 제14권4호
    • /
    • pp.208-213
    • /
    • 2011
  • 합성된 $BF_3LiMA$ 리튬염을 단량체로 사용하는 고체 고분자전해질을 제조하고 $BF_3LiMA$의 농도가 이온전도도에 미치는 영향 및 전기화학적 안정성을 교류임피던스 측정법과 선형전위주사법을 통하여 평가하였다. 그 결과 $BF_3LiMA$가 12.9 wt%인 고체 고분자전해질에서 $7.71{\times}10^{-6}S\;cm^{-1}$의 가장 높은 $25^{\circ}C$ 이온전도도가 관찰되었으며 이 값을 전후로 이온전도도는 다소 감소하는 경향이 나타났다. 이러한 결과는 저농도의 $BF_3LiMA$에서 발생할 수 있는 리튬염의 부족과 고농도의 $BF_3LiMA$에서는 발생할 수 있는 고분자기질의 유동성 감소가 원인으로 해석된다. 또한 $BF_3LiMA$ 기반의 고체 고분자전해질은 음이온이 고정되어 있는 자기-도핑형 계열로서 $60^{\circ}C$에서 6.0 V까지 우수한 전기화학적 안정성을 보여주었다.

Electrochemical Properties of Binary Electrolytes for Lithium-sulfur Batteries

  • Kim, Hyung-Sun;Jeong, Chang-Sik
    • Bulletin of the Korean Chemical Society
    • /
    • 제32권10호
    • /
    • pp.3682-3686
    • /
    • 2011
  • The electrochemical properties of lithium-sulfur batteries with binary electrolytes based on DME and DOL, TEGDME and DOL mixed solvent containing $LiClO_4$, LiTFSI, and LiTF salts were investigated. The ionic conductivity of 1M LiTFSI and $LiClO_4$ electrolytes based on TEGDME and DOL increased as the volume ratio of DOL solvent increased, because DOL effectively reduces the viscosity of the above electrolytes medium under the same salts concentration. The first discharge capacity of lithium-sulfur batteries in the DME and DOL-based electrolyte followed this order: LiTFSI (1,000 mAh/g) > LiTF (850 mAh/g) > $LiClO_4$ (750 mAh/g). In case of the electrolyte based on TEGDME and DOL, the first discharge capacity of batteries followed this order: $LiClO_4$ (1,030 mAh/g) > LiTF (770 mAh/g) > LiTFSI (750 mAh/g). The cyclic efficiency of lithium-sulfur batteries at 1M $LiClO_4$ electrolytes is higher than that of batteries at other lithium salts-based electrolytes. Lithium-sulfur battery showed discharge capacity of 550 mAh/g until 20 cycles at all electrolytes based on DME and DOL solvent. By contrast, the discharge capacity of batteries was about 450 mAh/g at 1M LiTFSI and LiTF electrolytes based on TEGDME and DOL solvent after 20 cycles.

가교형 겔폴리머전해질 조성에 따른 리튬이온폴리머전지의 특성에 관한 연구 (A Study on the Characteristics of Lithium-Ion Polymer Battery with Composition of Crosslink-Type Gel Polymer Electrolyte)

  • 김현수;문성인;김상필
    • 전기화학회지
    • /
    • 제7권4호
    • /
    • pp.189-193
    • /
    • 2004
  • 본 연구에서는 POAGA와 TEGDMA로 구성된 반응성 단량체에서 두 단량체 및 개시제의 조성에 따른 겔폴리머전해질전지를 제조하고 전지특성을 평가하였다 POAGA계 겔폴리머전해질은 단량체의 함량이 증가함에 따라 겔화 시간은 감소하였다. POAGA계 겔폴리머전해질은 4.5V까지 전기화학적으로 안정하였으며, 상온 이온전도도는 약 $5.2\times10^{-3}Scm^{-1}$이었다. POAGA계 겔폴리머전해질을 채용한 리튬이온폴리머전지는 반응성 단량체의 함량이 $5.0wt\%$$7.0wt\%$인 경우에 비하여 $3.0wt\%$인 경우가 고율, 저온 및 사이클 특성이 우수하였다 또한 개시제 함량은 $1.0\~3.0wt\%$ 범위에서는 $1.0wt\%$인 경우가 우수한 전지특성을 나타내었다.

합성 방법에 따른 Li1.3Al0.3Ti1.7(PO4)3 소결체의 미세 구조 및 이온전도 특성 연구 (A Study on the Microstructures and Ionic Conductivity of Li1.3Al0.3Ti1.7(PO4)3 with Different Synthesis Routes)

  • 최슬기;최재원;양민호
    • 한국분말재료학회지
    • /
    • 제30권2호
    • /
    • pp.107-115
    • /
    • 2023
  • Li1.3Al0.3Ti1.7(PO4)3(LATP) is considered a promising material for all-solid-state lithium batteries owing to its high moisture stability, wide potential window (~6 V), and relatively high ion conductivity (10-3-10-4 S/cm). Solid electrolytes based on LATP are manufactured via sintering, using LATP powder as the starting material. The properties of the starting materials depend on the synthesis conditions, which affect the microstructure and ionic conductivity of the solid electrolytes. In this study, we synthesize the LATP powder using sol-gel and co-precipitation methods and characterize the physical properties of powder, such as size, shape, and crystallinity. In addition, we have prepared a disc-shaped LATP solid electrolyte using LATP powder as the starting material. In addition, X-ray diffraction, scanning electron microscopy, and electrochemical impedance spectroscopic measurements are conducted to analyze the grain size, microstructures, and ion conduction properties. These results indicate that the synthesis conditions of the powder are a crucial factor in creating microstructures and affecting the conduction properties of lithium ions in solid electrolytes.