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弹性冰微纤维。

Elastic ice microfibers.

机构信息

State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, China.

Center for X-Mechanics, Zhejiang University, Hangzhou 310027, China.

出版信息

Science. 2021 Jul 9;373(6551):187-192. doi: 10.1126/science.abh3754.

Abstract

Ice is known to be a rigid and brittle crystal that fractures when deformed. We demonstrate that ice grown as single-crystal ice microfibers (IMFs) with diameters ranging from 10 micrometers to less than 800 nanometers is highly elastic. Under cryotemperature, we could reversibly bend the IMFs up to a maximum strain of 10.9%, which approaches the theoretical elastic limit. We also observed a pressure-induced phase transition of ice from Ih to II on the compressive side of sharply bent IMFs. The high optical quality allows for low-loss optical waveguiding and whispering-gallery-mode resonance in our IMFs. The discovery of these flexible ice fibers opens opportunities for exploring ice physics and ice-related technology on micro- and nanometer scales.

摘要

众所周知,冰是一种刚性和脆性的晶体,在变形时会断裂。我们证明,直径从 10 微米到小于 800 纳米的单晶冰微纤维(IMFs)生长的冰具有很高的弹性。在低温下,我们可以将 IMF 可逆地弯曲到最大应变 10.9%,接近理论弹性极限。我们还观察到在急剧弯曲的 IMF 的压缩侧,冰从 Ih 向 II 发生压力诱导的相转变。高光学质量允许在我们的 IMF 中进行低损耗的光学波导和 whispering-gallery-mode 共振。这些柔性冰纤维的发现为探索微纳尺度的冰物理和冰相关技术提供了机会。

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