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Brittle-flexible-brittle transition in nanocrystalline zirconia nanofibrous membranes

机译:纳米晶氧化锆纳米纤维膜的脆性-脆性-脆性转变

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The study of nanocrystalline inorganic nanofibrous membranes (NINMs) with flexibility is one of the most active academic research areas in advanced functional nanofibrous materials. Nonetheless, the role of nanocrystallinity in flexibility has remained uninvestigated until now, according to typical Hall-Petch effects of nanocrystalline metals. Here, we show a surprising brittle-to-flexible-to-brittle transition of zirconia and yttria stabilized zirconia (YSZ) nanofibrous membranes as the grain size and pore size reduce below 26 and 13 nm, respectively. Moreover, classical and inverse Hall-Petch effects were revealed in nanocrystalline zirconia and YSZ nanofibrous systems, which correspond to intragranular and intergranular deformation mechanisms, respectively. Most importantly, the bending deformation mechanism of the flexible nanocrystalline YSZ nanofibrous membranes was proposed from macroscopical membranes to microscopic unit cells, including the slip of fibers, bending of fibers, grain activity, and dislocation motions, which was given for the first time in electrospun flexible NINM materials. Our discovery is fundamentally important for understanding deformation behavior and designing various flexible NINMs as promising candidates in the field of catalysis, supercapacitors, biomaterials, etc.
机译:具有柔性的纳米晶体无机纳米纤维膜(NINMs)的研究是高级功能纳米纤维材料中最活跃的学术研究领域之一。然而,根据纳米晶体金属的典型霍尔-帕奇效应,到目前为止,纳米晶在柔性中的作用尚未得到研究。在这里,我们显示出出人意料的氧化锆和氧化钇稳定的氧化锆(YSZ)纳米纤维膜的脆性到柔韧性到脆性的转变,因为晶粒尺寸和孔径分别减小到26和13 nm以下。此外,在纳米晶氧化锆和YSZ纳米纤维体系中揭示了经典的和逆霍尔效应,分别对应于晶内和晶间变形机制。最重要的是,提出了柔性纳米晶体YSZ纳米纤维膜的弯曲变形机理,从宏观膜到微观晶胞,包括纤维的滑移,纤维的弯曲,晶粒活性和位错运动,这在电纺中是首次提出。灵活的NINM材料。我们的发现对于理解变形行为和设计各种灵活的NINM作为催化,超级电容器,生物材料等领域的有希望的候选者至关重要。

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