• Title/Summary/Keyword: 콜로이드 탐침

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Measurement of Normal Spring Constant of Colloidal Probes for Atomic Force Microscope (원자 현미경용 콜로이드 탐침 수직 스프링 상수 측정)

  • Kim, Dae-Hyun;Kim, Min-Seok;Hahn, Junhee;Ahn, Hyo-Sok
    • Tribology and Lubricants
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    • v.28 no.5
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    • pp.212-217
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    • 2012
  • A modified thermal noise method was proposed to measure the normal spring constants of the colloidal probes for an atomic force microscope. We used commercial tipless cantilevers (length 150, width 30, nominal k 7.4 N/m) and borosilicate spheres with a diameter of 20 to fabricate colloidal probes. The inverse optical lever sensitivity of both the tipless cantilever and colloidal probes were used to measure the normal spring constant of the colloidal probes. We confirmed the accuracy and usefulness of our method by comparing the measurement results with those obtained using the nanoforce calibrator (NFC), which reportedly has an uncertainty of 1.00%. The modified thermal method showed a good agreement (~10% difference) with the NFC, allowing us to conclude that the modified thermal method could be employed for the effective measurement of the normal spring constants of colloidal probes.

Near-field Photoluminescence Measurements of Colloidal Quantum Dots by Nano-probe Slide (나노 탐침 슬라이드를 이용한 콜로이드 양자점의 근접장 형광 측정)

  • 임상엽;정은희;최중길;박승한
    • Proceedings of the Optical Society of Korea Conference
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    • 2003.07a
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    • pp.186-187
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    • 2003
  • 최근 들어 단일 양자점이나 단일 분자에 대한 분광 연구가 매우 관심을 끌고 있는데, 이는 미세구조 물질의 근본 물성을 밝히고자 하는 물리적인 관점뿐만 아니라 이를 실제적으로 이용하려는 실용적인 관점에서도 매우 중요한 주제이기 때문이다. 그러나 단일 양자점이나 단일 분자의 분광을 위해서는 공간적인 분해능이 우수할 뿐만 아니라 그 계에서 나오는 매우 미약한 광 신호를 검출하여야 하는 고도의 기술이 필요하다. (중략)

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Tribological Properties of Tungsten Oxide Nanorods (산화 텅스텐 나노막대의 트라이볼로지 특성)

  • Kim, Dae-Hyun;Hahn, Jun-Hee;Song, Jae-Yong;Ahn, Hyo-Sok
    • Tribology and Lubricants
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    • v.27 no.6
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    • pp.344-350
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    • 2011
  • Friction and wear behavior of tungsten oxide nanorods (TONs) was investigated using friction force microscopy(FFM) employing colloidal probes instead of conventional sharp tips. Vertically well-ordered TONs with 40 nm diameter, 130 nm length and 100 nm pitch width were synthesized on an anodic aluminium oxide substrate using two step electrochemical anodizing processes. The colloidal probe (diameter 20 ${\mu}m$) attached at the free end of tipless cantilever was oscillated(scanned) against a stationary surface of vertically aligned TONs with various scan speeds (1.2 ${\mu}m/s$, 3.0 ${\mu}m/s$ and 6.0 ${\mu}m/s$) and sliding cycles (100, 200 and 400) under normal load of 800 nN. The friction force and wear depth decreased with the increase of the scan speed. Plastically deformed thin layers were formed and sparsely deposited on the worn nonorod surface. The lower wear rate of the TONs with the longer oscillating cycles was attributed to the decreased real contact pressure due to the increase of real contact area between the colloidal probe and the TONs.

Study on Frictional Characteristics of Sub-micro Structured Silicon Surfaces (서브 마이크로 구조를 가진 실리콘 표면의 마찰 특성 연구)

  • Han, Ji-Hee;Han, Gue-Bum;Jang, Dong-Yong;Ahn, Hyo-Sok
    • Tribology and Lubricants
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    • v.33 no.3
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    • pp.92-97
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    • 2017
  • The understanding of the friction characteristics of micro-textured surface is of great importance to enhance the tribological properties of nano- and micro-devices. We fabricate rectangular patterns with submicron-scale structures on a Si wafer surface with various pitches and heights by using a focused ion beam (FIB). In addition, we fabricate tilted rectangular patterns to identify the influence of the tilt angle ($45^{\circ}$ and $135^{\circ}$) on friction behaviour. We perform the friction test using lateral force microscopy (LFM) employing a colloidal probe. We fabricate the colloidal probe by attaching a $10{\pm}1-{\mu}m$-diameter borosilicate glass sphere to a tipless silicon cantilever by using a ultraviolet cure adhesive. The applied normal loads range between 200 nN and 1100 nN and the sliding speed was set to $12{\mu}m/s$. The test results show that the friction behavior varied depending on the pitch, height, and tilt angle of the microstructure. The friction forces were relatively lower for narrower and deeper pitches. The comparison of friction force between the sub-micro-structured surfaces and the original Si surface indicate an improvement of the friction property at a low load range. The current study provides a better understanding of the influence of pitch, height, and tilt angle of the microstructure on their tribological properties, enabling the design of sub-micro- and micro-structured Si surfaces to improve their mechanical durability.