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Ultralarge Bending Strain and Fracture‐Resistance Investigation of Tungsten Carbide Nanowires
Authors:Yong Sun  Yanmao Chen  Hao Cui  Jing Wang  Chengxin Wang
Affiliation:1. State Key Laboratory of Optoelectronic Materials and Technologies, School of Materials Science and Engineering, The Key Laboratory of Low‐Carbon Chemistry & Energy Conservation of Guangdong Province, Guangzhou, P. R. China;2. Department of Mechanics, Sun Yat‐sen (Zhongshan) University, Guangzhou, P. R. China
Abstract:Hard tungsten carbide (WC) with brittle behavior is frequently applied for mechanical purposes. Here, ultralarge elastic bending deformation is reported in defect‐rare WC 0001] nanowires; the tested bending strain reaches a maximum of 20% ± 3.33%, which challenges the traditional understanding of this material. The lattice analysis indicates that the dislocations are confined to the inner part of the WC nanowires. First, the high Peierls–Nabarro barrier hinders the movement of the locally formed dislocations, which causes rapid dislocation aggregation and hinders long‐range glide, resulting in a dense distribution of the dislocation network. In this case, the loading is dispersed along multiple points, which is then balanced by the complex internal mechanical field. In the compressive part, the possible dislocations predominantly emerge in the (0001) plane and mainly slip along the axial direction. The disordered shell first forms at the tensile side and prevents the generation of nanocracks at the surface. The novel lattice kinetics make WC nanowires capable of substantial bending strain resistance. Analytical results of the force–displacement (F–d) curves based on the double‐clamped beam model exhibit an obvious nonlinear elastic characteristic, which originates fundamentally from the lattice anharmonicity under moderate stress.
Keywords:elasticity  ultralarge bending strain  tungsten carbide nanowires  fracture‐resistance
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