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首页> 外文期刊>Batteries >Structure, Hydrogen Storage, and Electrochemical Properties of Body-Centered-Cubic Ti40V30Cr15Mn13X2 Alloys (X = B, Si, Mn, Ni, Zr, Nb, Mo, and La)
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Structure, Hydrogen Storage, and Electrochemical Properties of Body-Centered-Cubic Ti40V30Cr15Mn13X2 Alloys (X = B, Si, Mn, Ni, Zr, Nb, Mo, and La)

机译:体心立方Ti 40 V 30 Cr 15 Mn 13 的结构,储氢和电化学性能X 2 合金(X = B,Si,Mn,Ni,Zr,Nb,Mo和La)

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Structure, gaseous phase hydrogen storage, and electrochemical properties of a series of TiVCrMn-based body-centered-cubic (BCC) alloys with different partial substitutions for Mn with covalent elements (B and Si), transition metals (Ni, Zr, Nb, and Mo), and rare earth element (La) were investigated. Although the influences from substitutions on structure and gaseous phase storage properties were minor, influences on electrochemical discharge capacity were significant. The first cycle capacity ranged from 16 mAh·g−1 (Si-substituted) to 247 mAh·g−1 (Mo-substituted). Severe alloy passivation in 30% KOH electrolyte was observed, and an original capacity close to 500 mAh·g−1 could possibly be achieved by Mo-substituted alloy if a non-corrosive electrolyte was employed. Surface coating of Nafion to the Mo-substituted alloy was able to increase the first cycle capacity to 408 mAh·g−1, but the degradation rate in mAh·g−1·cycle−1 was still similar to that of standard testing. Electrochemical capacity was found to be closely related to BCC phase unit cell volume and width of the an extra small pressure plateau at around 0.3 MPa on the 30 °C pressure-concentration-temperature (PCT) desorption isotherm. Judging from its high electrochemical discharge capacity, Mo was the most beneficial substitution in BCC alloys for Ni/metal hydride (MH) battery application.
机译:一系列TiVCrMn基体心立方(BCC)合金的结构,气相储氢和电化学性能,这些共价元素(B和Si),过渡金属(Ni,Zr,Nb,和Mo),以及稀土元素(La)。尽管取代对结构和气相存储性能的影响很小,但对电化学放电容量的影响却很大。第一循环容量在16mAh·g -1 (Si-取代的)至247mAh·g -1 (Mo-取代的)的范围内。在30%KOH电解液中观察到严重的合金钝化,如果使用非腐蚀性电解液,则Mo取代合金可能会达到接近500 mAh·g -1 的原始容量。 Nafion在Mo取代合金上的表面涂层能够将第一循环容量提高到408 mAh·g -1 ,但降解速率却在mAh·g -1 ·cycle −1 仍然与标准测试相似。在30°C的压力-浓度-温度(PCT)解吸等温线上,电化学容量与BCC相的晶胞体积和0.3 MPa左右的超小压力平稳区的宽度密切相关。从其高的电化学放电容量来看,Mo是BCC合金中镍/金属氢化物(MH)电池应用中最有益的替代品。

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