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非晶或结晶尼龙6共混改性热塑性聚氨酯的耐溶剂性能 被引量:3
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作者 张龙 郭强 +3 位作者 毕宸洋 曹志强 靳海童 杨奇轩 《高分子材料科学与工程》 EI CAS CSCD 北大核心 2019年第5期71-75,83,共6页
采用机械共混法分别制备了非晶尼龙6(Amorphous-PA6)/热塑性聚氨酯(TPU)与一般结晶的尼龙6(Crystalline-PA6)/TPU 2种塑料合金,分析了尼龙6的非晶与结晶结构及共混比对塑料合金的耐热、抗拉和耐溶剂性能的影响。随着A-PA6含量增大,A-PA6... 采用机械共混法分别制备了非晶尼龙6(Amorphous-PA6)/热塑性聚氨酯(TPU)与一般结晶的尼龙6(Crystalline-PA6)/TPU 2种塑料合金,分析了尼龙6的非晶与结晶结构及共混比对塑料合金的耐热、抗拉和耐溶剂性能的影响。随着A-PA6含量增大,A-PA6/TPU合金的耐热、抗拉和耐溶剂性能均逐渐提高,当A-PA6含量分别为10%和25%时,拉伸强度从纯TPU的35.0 MPa增至40.9 MPa和43.9 MPa,断裂伸长率基本不变,天那水浸泡6 h的溶胀率比纯TPU降低达到14%,拉伸强度从纯TPU的18.8 MPa提高到26.8 MPa和35.1 MPa,后者比纯TPU增高86.7%,而与纯TPU浸泡前相当。C-PA6/TPU合金的C-PA6最佳含量为10%,天那水浸泡6 h后拉伸强度从浸泡前的37.6 MPa降至23.0 MPa,其抗拉和耐溶剂性能均低于A-PA6/TPU。 展开更多
关键词 结晶尼龙6 非晶尼龙6 热塑性聚氨酯 耐溶剂性
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Nanoparticle-Decorated Ultrathin La2O3 Nanosheets as an Effcient Electrocatalysis for Oxygen Evolution Reactions 被引量:5
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作者 Guangyuan Yan Yizhan Wang +7 位作者 Ziyi Zhang Yutao Dong Jingyu Wang Corey Carlos Pu Zhang zhiqiang cao Yanchao Mao Xudong Wang 《Nano-Micro Letters》 SCIE EI CAS CSCD 2020年第4期41-52,共12页
Electrochemical catalysts for oxygen evolution reaction are a critical component for many renewable energy applications. To improve their catalytic kinetics and mass activity are essential for sustainable industrial a... Electrochemical catalysts for oxygen evolution reaction are a critical component for many renewable energy applications. To improve their catalytic kinetics and mass activity are essential for sustainable industrial applications. Here, we report a rare-earth metal-based oxide electrocatalyst comprised of ultrathin amorphous La2O3 nanosheets hybridized with uniform La2O3 nanoparticles(La2O3@NP-NS). Significantly improved OER performance is observed from the nanosheets with a nanometer-scale thickness. The as-synthesized 2.27-nm La2O3@NP-NS exhibits excellent catalytic kinetics with an overpotential of 310 mV at 10 m A cm^-2, a small Tafel slope of 43.1 mV dec^-1, and electrochemical impedance of 38 Ω. More importantly, due to the ultrasmall thickness, its mass activity, and turnover frequency reach as high as 6666.7 A g^-1 and 5.79 s^-1, respectively, at an overpotential of 310 mV. Such a high mass activity is more than three orders of magnitude higher than benchmark OER electrocatalysts, such as IrO2 and RuO2. This work presents a sustainable approach toward the development of highly e cient electrocatalysts with largely reduced mass loading of precious elements. 展开更多
关键词 Oxygen evolution reaction Multiphase hybrid Two-dimensional nanomaterials Rare-earth oxides Ionic layer epitaxy
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