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Metastable face-centered cubic ruthenium-based binary alloy for efficient alkaline hydrogen oxidation electrocatalysis
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作者 Yunbo Li Jianchao Yue +3 位作者 Chaoyi Yang Hongnan Jia Hengjiang Cong Wei Luo 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第5期207-215,共9页
Metastable nanostructured electrocatalyst with a completely different surface environment compared to conventional phase-based electrocatalyst often shows distinctive catalytic property.Although Ru-based electrocataly... Metastable nanostructured electrocatalyst with a completely different surface environment compared to conventional phase-based electrocatalyst often shows distinctive catalytic property.Although Ru-based electrocatalysts have been widely investigated toward hydrogen oxidation reaction(HOR)under alkaline electrolytes,these studies are mostly limited to conventional hexagonal-close-packed(hcp)phase,mainly arising from the lack of sufficient synthesis strategies.In this study,we report the precise synthesis of metastable binary RuW alloy with face-centered-cubic(fcc)phase.We find that the introduction of W can serve as fcc phase seeds and reduce the formation energy of metastable fcc-RuW alloy.Impressively,fcc-RuW exhibits remarkable alkaline HOR performance and stability with the activity of 0.67 mA cm_(Ru)^(-2)which is almost five and three times higher than that of hcp-Ru and commercial Pt/C,respectively,which is attributed to the optimized binding strength of adsorbed hydroxide intermediate derived from tailored electronic structure through W doping and phase engineering.Moreover,this strategy can also be applied to synthesize other metastable fcc-RuCr and fcc-RuMo alloys with enhanced HOR performances. 展开更多
关键词 Hydrogen oxidation reaction Metastable phase face-centered cubic(fcc) Ru Phase engineering
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面心立方金属纳米材料变形机制研究进展 被引量:7
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作者 王立华 韦如建 +4 位作者 方云义 罗俊锋 陈艳辉 李炜 韩晓东 《北京工业大学学报》 CAS CSCD 北大核心 2019年第11期1125-1146,共22页
与传统块体金属材料相比,纳米金属材料具有更加优异的力学性能.而材料外在的力学性能与材料在外力作用下的原子尺度显微结构变化直接相关.研究金属材料在应力下结构演化的原子机制,建立一个清晰的原子尺度下微观结构演变的物理图像,是... 与传统块体金属材料相比,纳米金属材料具有更加优异的力学性能.而材料外在的力学性能与材料在外力作用下的原子尺度显微结构变化直接相关.研究金属材料在应力下结构演化的原子机制,建立一个清晰的原子尺度下微观结构演变的物理图像,是高性能材料设计和优化的重要基础.主要介绍近年来面心立方纳米金属变形机理研究上取得的主要进展.首先,对各种研究金属纳米材料变形机制的实验方法进行一个简单的介绍;然后,对多晶和单晶金属纳米材料的尺寸效应以及变形机制的研究进行总结;最后,归纳纳米金属材料与块体金属材料塑性变形模式的不同,并对未来面临的挑战做简要的展望. 展开更多
关键词 面心立方(fcc) 金属纳米材料 变形机制 尺寸效应 原子尺度 原位实验
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目标电磁散射的面中心立方体网格FDTD方法 被引量:4
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作者 杨利霞 汪刘丰 +1 位作者 陈伟 薄勇 《系统工程与电子技术》 EI CSCD 北大核心 2021年第10期2718-2724,共7页
基于面中心立方体(face-centered cube,FCC)网格的空间结构,由麦克斯韦方程出发,推导了基于FCC网格的单轴各向异性介质完全匹配层(uniaxial anisotropic media perfectly matched layer,UPML)吸收边界条件以及近远场外推边界条件的三维... 基于面中心立方体(face-centered cube,FCC)网格的空间结构,由麦克斯韦方程出发,推导了基于FCC网格的单轴各向异性介质完全匹配层(uniaxial anisotropic media perfectly matched layer,UPML)吸收边界条件以及近远场外推边界条件的三维迭代式。通过典型算例,先后验证了基于面中心立方体网格的时域有限差分(FCC-finite difference time domain,FCC-FDTD)方法的UPML吸收边界条件和近远场外推边界条件的正确性。最后通过计算金属球的后向雷达散射截面(radar cross section,RCS)比较了FCC-FDTD方法与传统FDTD方法的计算精度,结果显示FCC-FDTD方法具有更高的计算精度。 展开更多
关键词 面中心立方体网格 时域有限差分方法 各向异性介质完全匹配层 近远场外推 雷达散射截面
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STUDY ON FRACTOGRAPHY OF TRANSGRANULAR SCC OF 70Cu-3OZn IN AN AMMONIACAL SOLUTION
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作者 S.Q.Li J.I.Dickson J.P.Bailon 《Acta Metallurgica Sinica(English Letters)》 SCIE EI CAS CSCD 1998年第5期347-357,共11页
The microfractography of transgranular stress corrosion cracking (TSCC) of 70Cu-30Zn a-brass in ammoniacal solution was studied. The observations indicate that on a very microscale, the crack path of TSCC of or-brass ... The microfractography of transgranular stress corrosion cracking (TSCC) of 70Cu-30Zn a-brass in ammoniacal solution was studied. The observations indicate that on a very microscale, the crack path of TSCC of or-brass follows {111} planes. The crack path very often alternates between {111} Planes to result in 'cleavage-like'facet, the usual average orientation of which is {110} with preferential microscopic crack propagation in (100) and (112) directions. The average orientation of wide secondary facets is often close to {100}. The size of {111} microfacets increases with incrmsing stress intensity K, which indicates that the microscopic crack path follows {111} planes on which some localized slip has occurred. Possible TSCC mechanisms which appear to be consistent with the microfraphic features observed in the present study are also discussed. 展开更多
关键词 FRACTOGRAPHY transgranular stress corrosion cracking (TSCC) 70Cu-30Zn a-brass face-centered cubic (fcc) metal
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Synthesis of MoX2 (X =Se or S) monolayers with high-concentration 1T'phase on 4H/fcc-Au nanorods for hydrogen evolution 被引量:4
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作者 Zhengqing Liu Xiao Zhang +13 位作者 Yue Gong Qipeng Lu Zhicheng Zhang Hongfei Cheng Qinglang Ma Junze Chen Meiting Zhao Bo Chen Ye Chen Xue-Jun Wu Pengfei Yin Lin Gu Yaping Du Hua Zhang 《Nano Research》 SCIE EI CAS CSCD 2019年第6期1301-1305,共5页
Controlled synthesis of transition metal dichalcogenide (TMD) monolayers with unusual crystal phases has attracted increasing attention due to their promising applications in electrocatalysis.However,the facile and la... Controlled synthesis of transition metal dichalcogenide (TMD) monolayers with unusual crystal phases has attracted increasing attention due to their promising applications in electrocatalysis.However,the facile and large-scale preparation of TMD monolayers with high-concentration unusual crystal phase still remains a challenge.Herein,we report the synthesis of MoX2 (X =Se or S) monolayers with high-concentration semimetallic 1T'phase by using the 4H/face-centered cubic (fcc)-Au nanorod as template to form the 4H/fcc-Au@MoX2 nanocomposite.The concentrations of 1T'phase in the prepared MoSe2 and MoS2 monolayers are up to 86% and 81%,respectively.As a proof-of-concept application,the obtained Au@MoS2 nanocomposite is used for the electrocatalytic hydrogen evolution reaction (HER) in acid medium,exhibiting excellent performance with a low overpotential of 178 mV at the current density of 10 mNcm^2,a small Tafel slope of 43.3 mV/dec,and excellent HER stability.This work paves a way for direct synthesis of TMD monolayers with high-concentration of unusual crystal phase for the electrocatalytic application. 展开更多
关键词 MOS2 monolayers semimetallic 1T'phase 4H/face-centered CUBIC (fcc)-Au NANORODS hydrogen evolution
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