• 제목/요약/키워드: Li salt doping

검색결과 3건 처리시간 0.017초

The Polyaniline Electrode Doped with Li Salt and Protonic Acid in Lithium Secondary Battery

  • Ryu, Kwang-Sun;Kim, Kwang-Man;Hong, Young-Sik;Park, Yong-Joon;Jang, Soon-Ho
    • Bulletin of the Korean Chemical Society
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    • 제23권8호
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    • pp.1144-1148
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    • 2002
  • We prepared the polyaniline (Pani) film and powder by chemical polymerization and doping with different dopants and also investigated the capability of Li//polyaniline cells after assembling. The oxidation/reduction potentials and electrochemical reaction of Li//polyaniline cells were tested by cyclic voltammetry technique. The Li//Pani-HCl cells with 10% and 20% conductors show a little larger specific discharge capacities than that without conductor. The highest discharge capacity of almost 50 mAh/g at 100th cycle is also achieved. However, Li//Pani-LiPF6 with 20% conductor shows a remarkable performance of ~90 mAh/g at 100th cycle. This is feasible value for using as the positive electrode material of lithium ion secondary batteries. It is also proved that the powder type electrode of Pani is better to use than the film type one to improve the specific discharge capacity and its stability with cycle.

Li 도핑된 NiO 합성 및 열전식 수소센서에의 적용 (Synthesis of Li-doped NiO and its application of thermoelectric gas sensor)

  • 한치환;한상도;김병권
    • 한국수소및신에너지학회논문집
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    • 제16권2호
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    • pp.136-141
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    • 2005
  • Li-doped NiO was synthesized by molten salt method. $LiNO_3$-LiOH flux was used as a source for Li doping. $NiCl_2$ was added to the molten Li flux and then processed to make the Li-doped NiO material. Li:Ni ratios were maintained from 5:1 to 30:1 during the synthetic procedure and the Li doping amount of synthesized materials were found between 0.086-0.190 as a Li ion to Ni ion ratio. Li doping did not change the basic cubic structural characteristics of NiO as evidenced by XRD studies, however the lattice parameter decreased from 0.41769nm in pure NiO to 0.41271nm as Li doping amount increased. Hydrogen gas sensors were fabricated using these materials as thick films on alumina substrates. The half surface of each sensor was coated with the Pt catalyst. The sensor when exposed to the hydrogen gas blended in air, heated up the catalytic surface leaving rest half surface (without catalyst) cold. The thermoelectric voltage thus built up along the hot and cold surface of the Li-doped NiO made the basis for detecting hydrogen gas. The linearity of the voltage signal vs $H_2$ concentration was checked up to 4% of $H_2$ in air (as higher concentrations above 4.65% are explosive in air) using Li doped NiO of Li ion/Ni ion=0.111 as the sensor material. The response time T90 and the recovery time RT90 were less than 25 sec. There was minimum interference of other gases and hence $H_2$ gas can easily be detected.

Membrane Strip형 전기전도도 면역센서 신호발생원으로써 전도성고분자 합성

  • 오규하;백세환
    • 한국생물공학회:학술대회논문집
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    • 한국생물공학회 2000년도 추계학술발표대회 및 bio-venture fair
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    • pp.707-708
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    • 2000
  • Membrane strip 면역 크로마토그래피 방법을 이용하여 정량분석을 수행하기 위해 스크린프린팅 기술에 의해 제작된 membrane 전극 상에 항체를 고정화하였고 신호발생물질로써 전도성고분자인 polyaniline이 결합된 colloidal gold를 사용하였다. 이때 사용이 적합한 전도성 고분자는 수용액에 대해 용해도가 높아야 하고 또한 면역반응 최적조건인 중성 pH에서 전기전도도를 유지할 수 있어야 한다. 이를 위해 기존의 polyaniline을 $LiPF_6$로 doping 하거나 새로운 수용성 고분자인 LEB-SPAN을 사용하여 전기전도도 측정용 면역 gold를 합성하였다.

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