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通过梯度结构设计在碳化硅纳米线网络中实现卓越的比机械强度和能量吸收能力

Achieving Remarkable Specific Mechanical Strength and Energy Absorption Capacity in SiC Nanowire Networks through Graded Structural Design.

作者信息

Lu De, Zhuang Lei, Zhang Jijun, Jia Shuhai, Guo Pengfei, Ni Zhentao, Su Lei, Niu Min, Peng Kang, Wang Hongjie

机构信息

State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an 710049, China.

School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

Nano Lett. 2024 Aug 21;24(33):10313-10321. doi: 10.1021/acs.nanolett.4c02916. Epub 2024 Aug 8.

Abstract

Lightweight porous ceramics with a unique combination of superior mechanical strength and damage tolerance are in significant demand in many fields such as energy absorption, aerospace vehicles, and chemical engineering; however, it is difficult to meet these mechanical requirements with conventional porous ceramics. Here, we report a graded structure design strategy to fabricate porous ceramic nanowire networks that simultaneously possess excellent mechanical strength and energy absorption capacity. Our optimized graded nanowire networks show a compressive strength of up to 35.6 MPa at a low density of 540 mg·cm, giving rise to a high specific compressive strength of 65.7 kN·m·kg and a high energy absorption capacity of 17.1 kJ·kg, owing to a homogeneous distribution of stress upon loading. These values are top performance compared to other porous ceramics, giving our materials significant potential in various engineering fields.

摘要

具有优异机械强度和损伤容限独特组合的轻质多孔陶瓷在能量吸收、航空航天器和化学工程等许多领域有巨大需求;然而,传统多孔陶瓷难以满足这些机械要求。在此,我们报道一种分级结构设计策略,以制造同时具有优异机械强度和能量吸收能力的多孔陶瓷纳米线网络。我们优化后的分级纳米线网络在540 mg·cm的低密度下显示出高达35.6 MPa的抗压强度,由于加载时应力均匀分布,产生了65.7 kN·m·kg的高比抗压强度和17.1 kJ·kg的高能量吸收能力。与其他多孔陶瓷相比,这些数值表现卓越,使我们的材料在各种工程领域具有巨大潜力。

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