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1)  Active cathode material
活性阴极材料
2)  cathode [英]['kæθəʊd]  [美]['kæθod]
阴极材料
1.
Progress of perovskite cathode for intermediate-low temperature solid oxide fuel cells;
钙钛矿型中低温固体氧化物燃料电池阴极材料研究进展
2.
The research advances of polymer-transition metal oxide composite cathode;
聚合物-过渡金属氧化物纳米复合阴极材料的研究进展
3.
Synthesis of the new cathode material Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ) for ITSOFC;
新型中温固体氧化物燃料电池阴极材料Ba_(0.5)Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-δ)的制备
3)  cathode materials
阴极材料
1.
Study on the cathode materials of solid oxide fuel cell La_(1-x)Sr_xMnO_3 by microwave syntheses;
微波合成固体氧化物燃料电池阴极材料La_(1-x)Sr_xMnO_3的研究
2.
Basic research on application of composite manganese dioxide cathode materials;
复合MnO_2阴极材料的应用基础研究
3.
6) as fuel cells cathode materials were prepared by glycine-ni- trate process (GNP).
采用甘氨酸-硝酸盐(GNP)法合成了中温固体氧化物燃料电池阴极材料La1-xSrxFeO3-δ(x=0。
4)  cathode material
阴极材料
1.
Research progress of nano-scale cathode materials in lithium ion battery;
锂离子电池纳米阴极材料的研究进展
2.
Preparation and performance of new cathode material Sm_(0.5)Sr_(0.5)VO_4 for ITSOFC;
新型中温SOFC阴极材料Sm_(0.5)Sr_(0.5)VO_4的制备与性能分析
3.
Synthesis and electrochemical properties of LiZn_xNi_(0.5-x)Mn_(1.5)O_4 as cathode material for lithium-ion battery;
溶液法合成锂离子电池的阴极材料LiZn_xNi_(0.5-x)Mn_(1.5)O_4及其电化学性质研究
5)  electrode active material
电极活性材料
1.
Progress and trend of the electrode active materials——The potential of chemical power sources for EV and HEV(Ⅰ);
电极活性材料的发展和趋势——EV和HEV用化学电源的潜力(Ⅰ)
2.
Storage properties and structure of electrode active materials for Ni/MH battery;
MH/Ni电池的储存性能与电极活性材料的结构
3.
The structure and microstructure changes of electrode active materials, β-Ni(OH)2 and AB5 alloy, during the charge and discharge processes have been studied detailed by means of X-ray diffraction (XRD).
借助X射线衍射等方法,研究了MH/Ni电池在充放电过程中电极活性材料β-Ni(OH)2和AB5合金的结构和微结构变化,进而讨论了两种电极活性材料在充放电过程中的物理行为和导电的物理机制。
6)  electrode material
电极活性材料
1.
Preparation and electrochemical properties of Li_4Ti_5O_(12) as an electrode material;
电极活性材料Li_4Ti_5O_(12)的制备及电化学性能
补充资料:活性阴极
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性质:又称活性氢阴极(active hydrogen cathode)。在电解过程中析氢过电位比铁阴极低、电催化活性比铁阴极高的阴极。以铁、镍或者其合金为基体材料,经脱脂、喷砂、酸洗等预处理后,用电解(直流电和脉冲镀)、真空喷镀有机物分散等方法将铂、钯、钨、铝、锌、磷、钴、钼、锆、镧等金属或其合金涂(或喷涂)于基体上,经水漂洗、非高温处理涂层后制得。具有氢过电位低等优点,可降低氯碱电解工艺的总能耗。缺点是涂层因受阴极液中杂质铁的毒化易剥离而丧失活性。

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