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非晶态金属的纳米成型

Nanomoulding with amorphous metals.

作者信息

Kumar Golden, Tang Hong X, Schroers Jan

机构信息

Mechanical Engineering, Yale University, New Haven, Connecticut 06511, USA.

出版信息

Nature. 2009 Feb 12;457(7231):868-72. doi: 10.1038/nature07718.

DOI:10.1038/nature07718
PMID:19212407
Abstract

Nanoimprinting promises low-cost fabrication of micro- and nano-devices by embossing features from a hard mould onto thermoplastic materials, typically polymers with low glass transition temperature. The success and proliferation of such methods critically rely on the manufacturing of robust and durable master moulds. Silicon-based moulds are brittle and have limited longevity. Metal moulds are stronger than semiconductors, but patterning of metals on the nanometre scale is limited by their finite grain size. Amorphous metals (metallic glasses) exhibit superior mechanical properties and are intrinsically free from grain size limitations. Here we demonstrate direct nanopatterning of metallic glasses by hot embossing, generating feature sizes as small as 13 nm. After subsequently crystallizing the as-formed metallic glass mould, we show that another amorphous sample of the same alloy can be formed on the crystallized mould. In addition, metallic glass replicas can also be used as moulds for polymers or other metallic glasses with lower softening temperatures. Using this 'spawning' process, we can massively replicate patterned surfaces through direct moulding without using conventional lithography. We anticipate that our findings will catalyse the development of micro- and nanoscale metallic glass applications that capitalize on the outstanding mechanical properties, microstructural homogeneity and isotropy, and ease of thermoplastic forming exhibited by these materials.

摘要

纳米压印技术有望通过将硬模具上的图案压印到热塑性材料(通常是玻璃化转变温度较低的聚合物)上来低成本制造微纳器件。此类方法的成功与推广严重依赖于坚固耐用的母模制造。硅基模具易碎且寿命有限。金属模具比半导体模具更坚固,但在纳米尺度上对金属进行图案化会受到其有限晶粒尺寸的限制。非晶态金属(金属玻璃)具有卓越的机械性能,并且本质上不受晶粒尺寸的限制。在此,我们展示了通过热压印对金属玻璃进行直接纳米图案化,生成的特征尺寸小至13纳米。在随后使形成的金属玻璃模具结晶后,我们表明可以在结晶后的模具上形成同一种合金的另一个非晶态样品。此外,金属玻璃复制品还可以用作聚合物或其他软化温度较低的金属玻璃的模具。利用这种“衍生”工艺,我们可以通过直接模塑大量复制图案化表面,而无需使用传统光刻技术。我们预计,我们的发现将推动微纳尺度金属玻璃应用的发展,这些应用利用了这些材料所展现出的出色机械性能、微观结构均匀性和各向同性以及热塑性成型的便利性。

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本文引用的文献

1
Metallic glasses.金属玻璃。
Science. 1995 Mar 31;267(5206):1947-53. doi: 10.1126/science.267.5206.1947.
2
New approaches to nanofabrication: molding, printing, and other techniques.纳米制造的新方法:成型、印刷及其他技术。
Chem Rev. 2005 Apr;105(4):1171-96. doi: 10.1021/cr030076o.
3
Ductile bulk metallic glass.韧性块状金属玻璃。
光刻技术的进展与纳米结构制造的新兴分子策略
Int J Mol Sci. 2025 Mar 26;26(7):3027. doi: 10.3390/ijms26073027.
4
Strong absorption in ultra-wide band by surface nano engineering of metallic glass.通过金属玻璃的表面纳米工程实现超宽带强吸收
Fundam Res. 2022 Oct 8;5(1):307-314. doi: 10.1016/j.fmre.2022.09.017. eCollection 2025 Jan.
5
Sub-Micron Replication of Fused Silica Glass and Amorphous Metals for Tool-Based Manufacturing.用于基于工具制造的熔融石英玻璃和非晶态金属的亚微米复制
Adv Sci (Weinh). 2024 Sep;11(35):e2405320. doi: 10.1002/advs.202405320. Epub 2024 Jul 12.
6
Intrinsic tensile ductility in strain hardening multiprincipal element metallic glass.应变硬化多主元金属玻璃中的本征拉伸延展性。
Proc Natl Acad Sci U S A. 2024 Apr 30;121(18):e2400200121. doi: 10.1073/pnas.2400200121. Epub 2024 Apr 25.
7
Effect of Chemical Composition on the Thermoplastic Formability and Nanoindentation of Ti-Based Bulk Metallic Glasses.化学成分对钛基大块金属玻璃热塑性成型性及纳米压痕的影响
Materials (Basel). 2024 Apr 8;17(7):1699. doi: 10.3390/ma17071699.
8
Hierarchical Surface Pattern on Ni-Free Ti-Based Bulk Metallic Glass to Control Cell Interactions.用于控制细胞相互作用的无镍钛基块状金属玻璃上的分级表面图案
Small. 2024 May;20(22):e2310364. doi: 10.1002/smll.202310364. Epub 2023 Dec 18.
9
Size-dependent deformation behavior in nanosized amorphous metals suggesting transition from collective to individual atomic transport.纳米非晶态金属中尺寸依赖的变形行为表明从集体原子输运向单个原子输运的转变。
Nat Commun. 2023 Sep 26;14(1):5987. doi: 10.1038/s41467-023-41582-2.
10
Spatial modulation of scalable nanostructures by combining maskless plasmonic lithography and grayscale-patterned strategy.通过结合无掩膜等离子体光刻和灰度图案化策略对可扩展纳米结构进行空间调制。
Nanoscale Adv. 2023 Jun 26;5(17):4424-4434. doi: 10.1039/d3na00147d. eCollection 2023 Aug 24.
Phys Rev Lett. 2004 Dec 17;93(25):255506. doi: 10.1103/PhysRevLett.93.255506. Epub 2004 Dec 16.
4
Cobalt-based bulk glassy alloy with ultrahigh strength and soft magnetic properties.具有超高强度和软磁性能的钴基块状玻璃合金。
Nat Mater. 2003 Oct;2(10):661-3. doi: 10.1038/nmat982. Epub 2003 Sep 21.
5
Ultrafast and direct imprint of nanostructures in silicon.硅中纳米结构的超快直接压印
Nature. 2002 Jun 20;417(6891):835-7. doi: 10.1038/nature00792.