Diamond-structured nanonetwork gold as mechanical metamaterials from bottom-up approach

IF 8.6 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Suhail K. Siddique, Hassan Sadek, Chi-Wei Wang, Chang-Chun Lee, Cheng-Yuan Tsai, Shou-Yi Chang, Chia-Lin Li, Chun-Hway Hsueh, Rong-Ming Ho
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Abstract

Herein, this work aims to develop a facile method for the fabrication of metallic mechanical metamaterial with a well-ordered diamond structure from a bottom-up approach using a self-assembled block copolymer for templated electrochemical deposition. By controlling the effective volume fraction of PDMS in PS-b-PDMS via solvent annealing followed by HF etching of PDMS, it is feasible to obtain nanoporous PS with diamond-structured nanochannels and used it as a template for templated electrochemical deposition. Subsequently, well-ordered nanonetwork gold (Au) can be fabricated. As evidenced by nanoindentation and micro-compression tests, the mechanical properties of the diamond-structured Au after removal of PS give the combination of lightweight and mechanically robust characteristics with an exceptionally high reduced elastic modulus of 11.9 ± 0.6 GPa and yield strength of 193 ± 11 MPa above the Hashin-Shtrikman upper bound of 72 MPa with a bending-dominated structure at equivalent density. The corresponding deformation mechanism can be elucidated by morphological observations experimentally and finite element analysis (FEA) numerically. This work demonstrates the bottom-up approach to fabricating metallic monolith with diamond structure in the nanoscale, giving a superior performance as mechanical metamaterials. This work aims to fabricate well-ordered nanonetwork Au through a bottom-up approach using templated electrochemical deposition for enhanced mechanical properties. As evidenced by nanoindentation and micro-compression tests, diamond-structured Au fabricated exhibits high reduced modulus and yield strength above the Hashin-Shtrikman upper bound due to the deliberate structuring and nanosized effects.

Abstract Image

Abstract Image

自下而上的金刚石结构纳米网络金作为机械超材料
在此,本研究旨在开发一种简便的方法,利用自组装嵌段共聚物进行模板化电化学沉积,从自下而上的方法制备具有有序金刚石结构的金属机械超材料。通过溶剂退火和高频刻蚀PDMS,控制PS-b-PDMS中PDMS的有效体积分数,可以获得具有金刚石结构纳米通道的纳米多孔PS,并将其作为模板化电化学沉积的模板。随后,可以制备有序的纳米金(Au)。纳米压痕和微压缩试验表明,去除PS后的金刚石结构金具有轻质和机械坚固的特性,其降低弹性模量高达11.9±0.6 GPa,屈服强度为193±11 MPa,高于Hashin-Shtrikman上限72 MPa,具有等效密度下弯曲为主的结构。相应的变形机理可以通过实验形态学观察和数值有限元分析来阐明。这项工作展示了自下而上的方法在纳米尺度上制造具有金刚石结构的金属单体,作为机械超材料具有优越的性能。这项工作旨在通过自下而上的方法,使用模板化电化学沉积来增强机械性能,从而制造有序的纳米金网络。纳米压痕和微压缩试验表明,由于精心设计的结构和纳米效应,金刚石结构的金制品具有较高的降低模量和屈服强度,高于Hashin-Shtrikman上限。
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来源期刊
Npg Asia Materials
Npg Asia Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
15.40
自引率
1.00%
发文量
87
审稿时长
2 months
期刊介绍: NPG Asia Materials is an open access, international journal that publishes peer-reviewed review and primary research articles in the field of materials sciences. The journal has a global outlook and reach, with a base in the Asia-Pacific region to reflect the significant and growing output of materials research from this area. The target audience for NPG Asia Materials is scientists and researchers involved in materials research, covering a wide range of disciplines including physical and chemical sciences, biotechnology, and nanotechnology. The journal particularly welcomes high-quality articles from rapidly advancing areas that bridge the gap between materials science and engineering, as well as the classical disciplines of physics, chemistry, and biology. NPG Asia Materials is abstracted/indexed in Journal Citation Reports/Science Edition Web of Knowledge, Google Scholar, Chemical Abstract Services, Scopus, Ulrichsweb (ProQuest), and Scirus.
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