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Nickel nanoparticles set a new record of strength

机译:镍纳米粒子创下强度新纪录

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摘要

Material objects with micrometer or nanometer dimensions can exhibit much higher strength than macroscopic objects, but this strength rarely approaches the maximum theoretical strength of the material. Here, we demonstrate that faceted single-crystalline nickel (Ni) nanoparticles exhibit an ultrahigh compressive strength (up to 34 GPa) unprecedented for metallic materials. This strength matches the available estimates of Ni theoretical strength. Three factors are responsible for this record-high strength: the large Ni shear modulus, the smooth edges and corners of the nanoparticles, and the thin oxide layer on the particle surface. This finding is supported by molecular dynamics simulations that closely mimic the experimental conditions, which show that the mechanical failure of the strongest particles is triggered by homogeneous nucleation of dislocation loops inside the particle. The nucleation of a stable loop is preceded by multiple nucleation attempts accompanied by unusually large local atomic displacements caused by thermal fluctuations.
机译:具有微米或纳米尺寸的材料物体可以表现出比宏观物体更高的强度,但是这种强度很少接近材料的最大理论强度。在这里,我们证明了多面单晶镍(Ni)纳米颗粒展现了金属材料前所未有的超高压缩强度(高达34 GPa)。该强度与Ni理论强度的可用估计值相匹配。造成这种高强度的原因包括三个因素:较大的Ni剪切模量,纳米颗粒的光滑边缘和角落以及颗粒表面的薄氧化物层。这一发现得到了分子动力学模拟的支持,该模拟紧密模拟了实验条件,表明最强粒子的机械故障是由粒子内部位错环的均匀成核触发的。在进行稳定的成核之前,先进行多次成核尝试,并伴随着由热波动引起的异常大的局部原子位移。

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