• Title/Summary/Keyword: 원자력 힘 현미경

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The Effect of Surface Engineering on Nanoscale Adhesion and Friction of Nano and Energy Materials

  • Park, Jeong-Yeong
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2013.05a
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    • pp.35-36
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    • 2013
  • 본 발표는 atomic force microscopy (원자력현미경) 기법을 이용하여 그래핀을 포함한 다양한 나노물질의 물리적, 화학적, 역학적, 또한 전기적 특성의 상호영향 (correlation)의 이해를 목표로 한다. 원자력 현미경은 표면과 검침사이의 물리적 힘을 측정하고 이를 피드백시킴으로써 표면의 형상을 얻는 원리이며 표면의 역학적 (마찰력, 점착력), 전기수송적 특성을 동시에 측정할 수 있는 이점이 있다. 또한 원자력 현미경은 표면의 구조적인 특성과 표면에너지에 대한 정보를 나노미터 스케일에서 줄 수 있다. 나노선, 나노입자, 또한 연료전지의 모델 시스템에서 원자력현미경을 이용한 표면의 나노역학적 특성 및 점착력의 측정이 다루어질 것이며 표면공학을 통한 표면처리에 따른 마찰력과 점착력의 제어를 논의할 것이다.

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Quantitative Measurement of Nano-scale Force using Atomic Force Microscopy (AFM을 이용한 나노스케일 힘의 정량적 측정)

  • Chung, Koo-Hyun
    • Tribology and Lubricants
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    • v.28 no.2
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    • pp.62-69
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    • 2012
  • Atomic force microscopy (AFM) has been widely utilized as a versatile tool not only for imaging surfaces but also for understanding nano-scale interfacial phenomena. By measuring the responses of the photo detector due to bending and torsion of the cantilever, which are caused by the interactions between the probe and the sample surface, various interfacial phenomena and properties can be explored. One of the challenges faced by AFM researchers originates in the physics of measuring the small forces that act between the probe of a force sensing cantilever and the sample. To understand the interactions between the probe and the sample quantitatively, the force calibration is essential. In this work, the procedures used to calibrate AFM instrumentation for nano-scale force measurement in normal and lateral directions are reviewed.

Lateral Force Calibration in Liquid Environment using Multiple Pivot Loading (Multiple Pivot loading 방법을 이용한 액체 환경에서의 수평방향 힘 교정)

  • Kim, Lyu-Woon;Chung, Koo-Hyun
    • Tribology and Lubricants
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    • v.29 no.2
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    • pp.91-97
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    • 2013
  • Quantifying the nanoscale force between the atomic force microscopy (AFM) probe of a force-sensing cantilever and the sample is one of the challenges faced by AFM researchers. The normal force calibration is straightforward; however, the lateral force is complicated due to the twisting motion of the cantilever. Force measurement in a liquid environment is often needed for biological applications; however, calibrating the force of the AFM probes for those applications is more difficult owing to the limitations of conventional calibration methods. In this work, an accurate nondestructive lateral force calibration method using multiple pivot loading was proposed for liquid environment. The torque sensitivity at the location of the integrated probe was extrapolated based on accurately measured torque sensitivities across the cantilever width along a few cantilever lengths. The uncertainty of the torque sensitivity at the location of the integrated tip was about 13%, which is significantly smaller than those for other calibration methods in a liquid environment.

Mercury ion detection technique using KPFM (KPFM을 통한 수은이온 검출 방법)

  • Park, Chanho;Jang, Kwewhan;Lee, Sangmyung;You, Juneseok;Na, Sungsoo
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2014.10a
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    • pp.358-360
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    • 2014
  • For the several decades, various nanomaterials are broadly used in industry and research. With the growth of nanotechnology, the study of nanotoxicity is being accelerated. Particularly, mercury ion is widely used in real life. Because the mercury is representative high toxic material, it is highly recommended to detect the mercury ion. In previous reported work, thymine-thymine mismatches (T-T) capture mercury ion and create very stable base pair ($T-Hg^{2+}-T$). Here, we performed the high sensitive sensing method for direct label free detection of mercury ions and DNA binding using Kelvin Probe Force Microscope (KPFM). In this method, 30 base pairs of thymine (T-30) is used for mercury specific DNA binding ($T-Hg^{2+}-T$). KPFM is able to detect the mercury ion because there is difference between bare T-30 DNA and mercury mediated DNA ($T-Hg^{2+}-T$).

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