• Title/Summary/Keyword: micro/nano-scale contact

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Fabrication of Hydrophobic Surface by Controlling Micro/Nano Structures Using Ion Beam Method (이온빔을 이용한 표면 미세구조 제어를 통한 발수 표면 제조)

  • Kim, Dong-Hyeon;Lee, Dong-Hoon
    • Corrosion Science and Technology
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    • v.17 no.3
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    • pp.123-128
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    • 2018
  • The fabrication of a controlled surface is of great interest because it can be applied to various engineering facilities due to the various properties of the surface, such as self-cleaning, anti-bio-fouling, anti-icing, anti-corrosion, and anti-sticking. Controlled surfaces with micro/nano structures were fabricated using an ion beam focused onto a polypropylene (PP) surface with a fluoridation process. We developed a facile method of fabricating hydrophobic surfaces through ion beam treatment with argon and oxygen ions. The fabrication of low surface energy materials can replace the current expensive and complex manufacturing process. The contact angles (CAs) of the sample surface were $106^{\circ}$ and $108^{\circ}$ degrees using argon and oxygen ions, respectively. X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared (FT-IR) spectroscopy were used to determine the chemical composition of the surface. The morphology change of the surfaces was observed by scanning electron microscopy (SEM). The change of the surface morphology using the ion beam was shown to be very effective and provide enhanced optical properties. It is therefore expected that the prepared surface with wear and corrosion resistance might have a considerable potential in large scale industrial applications.

Proposed Approaches on Durability Enhancement of Small Structure fabricated on Camera Lens Surface (카메라 렌즈 표면에 형성된 미세 패턴의 내구성 향상 기법 제안)

  • Park, Hong Ju;Choi, In Beom;Kim, Doo-In;Jeong, Myung Yung
    • Journal of the Korean Society of Industry Convergence
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    • v.22 no.5
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    • pp.467-473
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    • 2019
  • In this study, approached to improve durability of the multi-functional nano-pattern fabricated on the curved lens surface using nanoimprint lithography (NIL) was proposed, and the effects of the proposed methods on functionality after wear test were examined. To improve the mechanical property of ultraviolet(UV)-curable resin, UV-NIL was conducted at the elevated temperature around $60^{\circ}C$. In addition, micro/nano hierarchical structures was fabricated on the lens surface with a durable film mold. Analysis on the worn surfaces of nano-hole pattern and hierarchical structures and measurements on the static water contact angle and critical water volume for roll-off indicated that the UV curing process with elevated temperature is effective to maintain wettability by increasing hardness of resin. Also, it was found that the micro-scale pattern is effective to protect nano-pattern from damage during wear test.

Experimental Investigation of CHF Enhancement on the Modified Surface Under Pool Boiling (개질된 표면을 이용한 풀비등 임계열유속 증진에 관련한 실험적 연구)

  • Kang, Soon-Ho;Ahn, Ho-Seon;Jo, Hang-Jin;Kim, Moo-Hwan;Kim, Hyung-Mo;Kim, Joon-Won
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.33 no.11
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    • pp.840-848
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    • 2009
  • In the boiling heat transfer mechanism, CHF(critical heat flux) is the significantly important parameter of the system. So, many researchers have been struggling to enhance the CHF of the system in enormous methods. Recently, there were lots of researches about enormous CHF enhancement with the nanofluids. In that, the pool boiling CHF in nanofluids has the significantly increased value compared to that in pure water because of the deposition of the nanoparticle on the heater surface in the nanofluids. The aim of this study is the comparison of the effect of the nanoparticle deposited surface and the modified surface which has the similar morphology and made by MEMS fabrication. The nanoparticle deposited surface has the complex structures in nano-micro scale. Therefore, we fabricated the surfaces which has the similar wettability and coated with the micro size post and nano structure. The experiment is performed in 3 cases : the bare surface with 0.002% water-ZnO nanofluids, the nanoparticle deposited surface with pure water and the new fabricated surface with pure water. The contact angle, a representative parameter of the wettability, of the all 3 cases has the similar value about 0 and the SEM(scanning electron microscope) images of the surfaces show the complex nano-micro structure. From the pool boiling experiment of the each case, the nanoparticle deposited surface with pure water and the fabricated surface with pure water has the almost same CHF value. In other words, the CHF enhancement of the nanoparticle deposited surface is the surface effect. It also shows that the new fabricated surface follows the nanoparticle deposited surface well.

Evaluation of Elastic Properties for Nanoscale Coating Layers Using Ultrasonic Atomic Force Microscopy (초음파원자현미경을 이용한 나노스케일 박막 코팅층에 대한 탄성특성 평가)

  • Kwak, Dong Ryul;Cho, Seung Bum;Park, Ik Keun
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.24 no.5
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    • pp.475-480
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    • 2015
  • Ultrasonic atomic force microscopy (Ultrasonic-AFM) has been used to investigate the elastic property of the ultra-thin coating layer in a thin-film system. The modified Hertzian theory was applied to predict the contact resonance frequency through accurate theoretical analysis of the dynamic characteristics of the cantilever. We coat 200 nm thick Aluminum and Titanium thin films on the substrate using the DC Magnetron sputtering method. The amplitude and phase of the contact resonance frequency of a vibrating cantilever varies in response to the local stiffness constant. Ultrasonic-AFM images were obtained using the variations in the elastic property of the materials. The morphology of the surface was clearly observed in the Ultrasonic-AFM images, but was barely visible in the topography. This research demonstrates that Ultrasonic-AFM is a promising technique for visualizing the distribution of local stiffness in the nano-scale thin coatings.

Controlled Surface Functionalities of metals using Femtosecond Laser-induced Nano- and Micro-scale Surface Structures (펨토초 레이저 유도 나노 및 마이크로 구조물을 활용한 금속 표면 기능성 제어)

  • Taehoon Park;Hyo Soo Lee;Hai Joong Lee;Taek Yong Hwang
    • Design & Manufacturing
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    • v.17 no.2
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    • pp.55-61
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    • 2023
  • With femtosecond (fs) laser pulse irradiation on metals, various types of nano- and micro-scale structures can be naturally induced at the surface through laser-matter interaction. Two notable structures are laser-induced periodic surface structures (LIPSSs) and cone/spike structures, which are known to significantly modify the optical and physical properties of metal surfaces. In this work, we irradiate fs laser pulses onto various types of metals, cold-rolled steel, pickled & oiled steel, Fe-18Cr-8Ni alloy, Zn-Mg-Al alloy coated steel, and pure Cu which can be useful for precise molding and imprinting processes, and adjust the morphological profiles of LIPSSs and cone/spike structures for clear structural coloration and a larger range of surface wettability control, respectively, by changing the fluence of laser and the speed of raster scan. The periods of LIPSSs on metals used in our experiments are nearly independent of laser fluence. Accordingly, the structural coloration of the surface with LIPSSs can be optimized with the morphological profile of LIPSSs, controlled only by the speed of the raster scan once the laser fluence is determined for each metal sample. However, different from LIPSSs, we demonstrate that the morphological profiles of the cone/spike structures, including their size, shape, and density, can be manipulated with both the laser fluence and the raster scan speed to increase a change in the contact angle. By injection molding and imprinting processes, it is expected that fs laser-induced surface structures on metals can be replicated to the plastic surfaces and potentially beneficial to control the optical and wetting properties of the surface of injection molded and imprinted products.

Non-Destructive Evaluation of Material Properties of Nanoscale Thin-Films Using Ultrafast Optical Pump-Probe Methods

  • Kim, Yun-Young;Krishnaswamy, Sridhar
    • Journal of the Korean Society for Nondestructive Testing
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    • v.32 no.2
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    • pp.115-121
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    • 2012
  • Exploration in microelectromechanical systems(MEMS) and nanotechnology requires evaluation techniques suitable for sub-micron length scale so that thermal and mechanical properties of novel materials can be investigated for optimal design of miro/nanostructures. The ultrafast optical pump-probe technique provides a contact-free and non-destructive way to characterize nanoscale thin-films, and its ultrahigh temporal resolution enables the study of heat-transport phenomena down to a sub-picosecond regime. This paper reviews the principle of optical pump-probe technique and introduces its application to the area of micro/nano-NDE.

A Study on identification and improvement of adhesive quality using adhesive theory at micro/nano scale contact (응착이론을 이용한 마이크로/나노스케일 접촉에서의 응착특성 규명 및 개선에 관한 연구)

  • Kim, Gyu-Sung;Yoon, Jun-Ho
    • 전자공학회논문지 IE
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    • v.44 no.3
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    • pp.42-50
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    • 2007
  • In this paper, elastic and plastic adhesion index was very important in deciding adhesive characteristics and varying elastic and plastic index, dimensionless load and pull-off force were analyzed and simulated. Finally, using AFM, experimental surface roughness parameters of substrates and pull-off force between tip and substrates were produced. Using these values, pull-off forces were calculated and were compared with experimental pull-off forces. Through simulation and experiment, it was found that interaction of asperity also had very important influence on adhesive contact.

A Study on Water-Proof Characteristics of a Stainless Steel Mesh by Electrochemical Etching Process (전기화학 에칭 공정을 이용한 스테인리스 스틸 메쉬의 방수 특성 연구)

  • Lee, Chan;Kim, Ji Min;Kim, Hyungmo
    • Tribology and Lubricants
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    • v.37 no.5
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    • pp.189-194
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    • 2021
  • A straightforward, yet effective surface modification method of stainless steel mesh and its interesting anti-wetting characteristics are reported in this study. The stainless steel mesh is electrochemically etched, and the specimen has both micro and nano-scale structures on its surface. This process transforms the two types of mesh specimens known as the regular and dense specimens into hydrophobic specimens without applying any hydrophobic chemical coating process. The fundamental wettability of the modified mesh is analyzed through a dedicatedly designed experiment to investigate the waterproof characteristics, for instance, the penetration threshold. The waterproof characteristics are evaluated in a manner that the modified mesh resists as high as approximately 2.7 times the pressure compared with the bare mesh, i.e., the non-modified mesh. The results show that the penetration threshold depends primarily on the advancing contact angles, and the penetration stop behaviors are affected by the contact angle hysteresis on the surfaces. The findings further confirm that the inexpensive waterproof meshes created using the proposed straightforward electrochemical etching process are effective and can be adapted along with appropriate designs for various practical applications, such as underwater devices, passive valves, and transducers. In general, , additional chemical coatings are applied using hydrophobic materials on the surfaces for the applications that require water-repelling capabilities. Although these chemical coatings can often cause aging, the process proposed in this study is not only cost-effective, but also durable implying that it does not lose its waterproof properties over time.

연 잎 구조를 응용한 금속 표면의 발수 특성 개발

  • Byeon, Eun-Yeon;Lee, Seung-Hun;Kim, Jong-Guk;Kim, Yang-Do;Kim, Do-Geun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.167-167
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    • 2013
  • 최근 발수 특성은 자동차 표면, 건축 구조물, 가전제품 및 모바일 기기 등 여러 분야에서 사용되고 점차 그 필요성이 대두되고 있다. 이러한 발수성의 표면은 연 잎이나 곤충의 날개, 도마뱀의 발바닥 등 자연계의 여러 곳에서 관찰 할 수 있다. 특히 연 잎의 표면에서 나타나는 초발수 특성이 마이크로와 나노 크기의 돌기 구조와 표피 왁스 성분에 기인한다는 것이 밝혀지면서 이를 응용한 다양한 연구가 진행되고 있다. 본 연구에서는 물리적인 표면처리로 마이크로와 나노 구조물을 형성하고 그 위에 표면에너지를 낮출 수 있는 물질을 증착하여, 발수 특성을 가지는 표면을 개발하였다. 알루미늄 표면에 마이크로 크기의 알루미나(Al2O3) 분말을 이용한 블라스트(blast) 공정으로 마이크로 구조를 형성하고, 선형 이온 소스(LIS)를 이용한 Ar 이온 빔 에칭으로 나노 구조를 형성하였다. FE-SEM 분석을 통해 수~수십 마이크로 구조 위에 나노 크기의 구조가 형성 된 것을 관찰하였다. 마이크로와 나노 구조가 형성된 알루미늄의 표면에너지를 낮추기 위해 trimethylsilane (TMS) 및 Ar을 이용한 플라즈마처리로 표면에 기능성 코팅막을 형성하였다. 그 결과 TMS처리 전에 비해 표면에너지가 99.75 mJ/m2에서 9.05 mJ/m2으로 급격히 낮아지고 접촉각이 $54^{\circ}$에서 $123^{\circ}$로 향상되었다.

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알루미늄 표면처리를 통한 발수 특성 개발

  • Byeon, Eun-Yeon;Lee, Seung-Hun;Kim, Jong-Guk;Kim, Yang-Do;Kim, Do-Geun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2012.11a
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    • pp.185-185
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    • 2012
  • 최근 자연모사를 이용한 연구가 다양한 분야에 적용되고 있다. 특히 연 잎의 표면에서 나타나는 초발수 특성이 마이크로 나노 크기의 구조와 표면에너지를 제어하는 에피큐티클 왁스에 기인하다는 것이 밝혀지면서 이를 응용한 연구가 진행되고 있다. 본 연구는 알루미늄 표면처리로 마이크로와 나노 구조물을 형성하고 그 위에 발수 특성을 가진 물질을 증착하여, 발수성을 가지는 표면을 개발하였다. 알루미늄 표면에 마이크로 크기의 알루미나($Al_2O_3$) 분말을 이용한 블라스트(blast) 공정으로 표면에 마이크로 구조를 형성하고, Linear Ion Source(LIS)를 적용한 Ar 이온빔 에칭으로 나노 구조를 형성하였다. FE-SEM 분석을 통해 수~수십 마이크로 구조 위에 나노 크기의 구조가 형성 된 것을 관찰하였다. 마이크로 나노 구조가 형성된 알루미늄의 표면에너지를 낮추기 위해 trimethylsilane(TMS) 및 Ar을 이용한 플라즈마처리로 표면에 기능성 코팅막을 형성하였다. 그 결과 TMS 발수 코팅하기 전에 비해 표면에너지가 $99.75mJ/m^2$에서 $9.05mJ/m^2$으로 급격히 낮아지고 접촉각 값이 $123^{\circ}$로 향상된 것을 확인하였다.

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