cu nanowires
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2022 ◽  
Author(s):  
Xiaomin Cao ◽  
Ronglei Fan ◽  
Ju Zhou ◽  
Cong Chen ◽  
Shunshun Xu ◽  
...  

A bifunctional NiMoFe/Cu NWs core–shell catalyst assembled into a practical solar-driven overall water splitting system leads to an unprecedented solar-to-hydrogen (STH) efficiency of 10.99 % in neutral electrolytes, attributed to...


Author(s):  
A. A. Mistonov ◽  
I. S. Dubitskiy ◽  
A. H. A. Elmekawy ◽  
E. G. Iashina ◽  
S. V. Sotnichuk ◽  
...  

2021 ◽  
Author(s):  
Hui Cao ◽  
Wenke Chen ◽  
Zhiyuan Rui ◽  
Changfeng Yan

Abstract Metal nanomaterials exhibit excellent mechanical properties compared with corresponding bulk materials and have potential applications in various areas. Despite a number of studies of the size effect on Cu nanowires mechanical properties with square cross-sectional, investigations of them in rectangular cross-sectional with various sizes at constant volume are rare, and lack of multifactor coupling effect on mechanical properties and quantitative investigation. In this work, the dependence of mechanical properties and deformation mechanisms of Cu nanowires/nanoplates under tension on cross-sessional area, aspect ratio of cross-sectional coupled with orientation were investigated using molecular dynamics simulations and the semi-empirical expressions related to mechanical properties were proposed. The simulation results show that the Young’s modulus and the yield stress sharply increase with the aspect ratio except for the <110>{110}{001} Cu nanowires/nanoplates at the same cross-sectional area. And the Young’s modulus increases while the yield stress decreases with the cross-sectional area of Cu nanowires. However, both of them increase with the cross-sectional area of Cu nanoplates. Besides, the Young’s modulus increases with the cross-sectional area at all the orientations. The yield stress shows a mildly downward trend except for the <111> Cu nanowires with increased cross-sectional area. For the Cu nanowires with a small cross-sectional area, the surface force increases with the aspect ratio. In contrast, it decreases with the aspect ratio increase at a large cross-sectional area. At the cross-sectional area of 13.068 nm2, the surface force decreases with the aspect ratio of the <110> Cu nanowires while it increases at other orientations. The surface force is a linearly decreasing function of the cross-sectional area at different orientations. Quantitative studies show that Young’s modulus and yield stress to the aspect ratio of the Cu nanowires satisfy exponent relationship. In addition, the main deformation mechanism of Cu nanowires is the nucleation and propagation of partial dislocations while it is the twinning-dominated reorientation for Cu nanoplates.


Nanomaterials ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 2729
Author(s):  
Sofia Caspani ◽  
Suellen Moraes ◽  
David Navas ◽  
Mariana P. Proenca ◽  
Ricardo Magalhães ◽  
...  

Multi-segmented bilayered Fe/Cu nanowires have been fabricated through the electrodeposition in porous anodic alumina membranes. We have assessed, with the support of micromagnetic simulations, the dependence of fabricated nanostructures’ magnetic properties either on the number of Fe/Cu bilayers or on the length of the magnetic layers, by fixing both the nonmagnetic segment length and the wire diameter. The magnetic reversal, in the segmented Fe nanowires (NWs) with a 300 nm length, occurs through the nucleation and propagation of a vortex domain wall (V-DW) from the extremities of each segment. By increasing the number of bilayers, the coercive field progressively increases due to the small magnetostatic coupling between Fe segments, but the coercivity found in an Fe continuous nanowire is not reached, since the interactions between layers is limited by the Cu separation. On the other hand, Fe segments 30 nm in length have exhibited a vortex configuration, with around 60% of the magnetization pointing parallel to the wires' long axis, which is equivalent to an isolated Fe nanodisc. By increasing the Fe segment length, a magnetic reversal occurred through the nucleation and propagation of a V-DW from the extremities of each segment, similar to what happens in a long cylindrical Fe nanowire. The particular case of the Fe/Cu bilayered nanowires with Fe segments 20 nm in length revealed a magnetization oriented in opposite directions, forming a synthetic antiferromagnetic system with coercivity and remanence values close to zero.


Author(s):  
Sandra Ruiz-Gómez ◽  
Claudia Fernández-González ◽  
Alejandra Guedeja-Marrón ◽  
Aída Serrano ◽  
Miguel Ángel González Barrio ◽  
...  
Keyword(s):  

2021 ◽  
pp. 1-8
Author(s):  
Xiangming Zeng ◽  
Peng Pan ◽  
Hao Qi ◽  
Zuming He ◽  
Jiangbin Su

Nano Letters ◽  
2021 ◽  
Author(s):  
Kun He ◽  
Kyoungdoc Kim ◽  
Cesar Jared Villa ◽  
Stephanie M. Ribet ◽  
Paul Smeets ◽  
...  
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