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近红外飞秒激光辐照下氧化亚铜纳米球对铜薄膜形貌的尺寸效应

Size Effects of Copper(I) Oxide Nanospheres on Their Morphology on Copper Thin Films under Near-Infrared Femtosecond Laser Irradiation.

作者信息

Mizoshiri Mizue, Tran Thuan Duc, Nguyen Kien Vu Trung

机构信息

Department of Mechanical Engineering, Nagaoka University of Technology, Nagaoka 940-2188, Japan.

出版信息

Nanomaterials (Basel). 2024 Sep 30;14(19):1584. doi: 10.3390/nano14191584.

Abstract

The femtosecond laser direct writing of metals has gained significant attention for micro/nanostructuring. Copper (I) oxide nanospheres (NSs), a promising material for multi-photon metallization, can be reduced to copper (Cu) and sintered through near-infrared femtosecond laser pulse irradiation. In this study, we investigated the size effect of copper (I) oxide nanospheres on their morphology when coated on Cu thin films and irradiated by near-infrared femtosecond laser pulses. Three CuO NS inks were prepared, consisting of small (φ100 nm), large (φ200 nm), and a mixture of φ100 nm and φ200 nm NSs. A unique phenomenon was observed at low laser pulse energy: both sizes of NSs bonded as single layers when the mixed NSs were used. At higher pulse energies, the small NSs melted readily compared to the large NSs. In comparisons between the large and mixed NSs, some large NSs remained intact, suggesting that the morphology of the NSs can be controlled by varying the concentration of different-sized NSs. Considering the simulation results indicating that the electromagnetic fields between large and small NSs are nearly identical, this differential morphology is likely attributed to the differences in the heat capacity of the NSs.

摘要

飞秒激光直接写入金属在微纳结构领域已备受关注。氧化亚铜纳米球(NSs)是一种用于多光子金属化的有前景的材料,可通过近红外飞秒激光脉冲辐照还原为铜(Cu)并烧结。在本研究中,我们研究了氧化亚铜纳米球涂覆在铜薄膜上并受到近红外飞秒激光脉冲辐照时,其尺寸对形态的影响。制备了三种氧化亚铜纳米球墨水,分别由小尺寸(φ100 nm)、大尺寸(φ200 nm)以及φ100 nm和φ200 nm纳米球的混合物组成。在低激光脉冲能量下观察到一个独特现象:当使用混合纳米球时,两种尺寸的纳米球都以单层形式结合。在较高脉冲能量下,与大尺寸纳米球相比,小尺寸纳米球更容易熔化。在大尺寸纳米球与混合纳米球的比较中,一些大尺寸纳米球保持完整,这表明可以通过改变不同尺寸纳米球的浓度来控制纳米球的形态。考虑到模拟结果表明大尺寸和小尺寸纳米球之间的电磁场几乎相同,这种不同的形态可能归因于纳米球热容量的差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ee77/11478529/0304c1107f04/nanomaterials-14-01584-g001.jpg

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