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    AuthorWang, Zhong Lin (2)Chen, Lih-Juann (1)Falconi, Christian (1)Fang, Hao (1)Li, Zhou (1)View MoreJournalAngewandte Chemie (1)Nano Letters (1)KAUST Acknowledged Support Unit
    KAUST Global Research Partnership (2)
    KAUST Grant Number
    CMMI 0403671 (2)
    DMS 0706436 (1)DMS0706436 (1)PublisherAmerican Chemical Society (ACS) (1)Wiley (1)TypeArticle (2)Year (Issue Date)2009 (2)Item AvailabilityMetadata Only (2)

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    Quantifying the Traction Force of a Single Cell by Aligned Silicon Nanowire Array

    Li, Zhou; Song, Jinhui; Mantini, Giulia; Lu, Ming-Yen; Fang, Hao; Falconi, Christian; Chen, Lih-Juann; Wang, Zhong Lin (Nano Letters, American Chemical Society (ACS), 2009-10-14) [Article]
    The physical behaviors of stationary cells, such as the morphology, motility, adhesion, anchorage, invasion and metastasis, are likely to be important for governing their biological characteristics. A change in the physical properties of mammalian cells could be an indication of disease. In this paper, we present a silicon-nanowire-array based technique for quantifying the mechanical behavior of single cells representing three distinct groups: normal mammalian cells, benign cells (L929), and malignant cells (HeLa). By culturing the cells on top of NW arrays, the maximum traction forces of two different tumor cells (HeLa, L929) have been measured by quantitatively analyzing the bending of the nanowires. The cancer cell exhibits a larger traction force than the normal cell by ∼20% for a HeLa cell and ∼50% for a L929 cell. The traction forces have been measured for the L929 cells and mechanocytes as a function of culture time. The relationship between cells extending area and their traction force has been investigated. Our study is likely important for studying the mechanical properties of single cells and their migration characteristics, possibly providing a new cellular level diagnostic technique. © 2009 American Chemical Society.
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    Optical Fiber/Nanowire Hybrid Structures for Efficient Three-Dimensional Dye-Sensitized Solar Cells

    Weintraub, Benjamin; Wei, Yaguang; Wang, Zhong Lin (Angewandte Chemie, Wiley, 2009-11-09) [Article]
    Wired up: The energy conversion efficiency of three-dimensional dye-sensitized solar cells (DSSCs) in a hybrid structure that integrates optical fibers and nanowire arrays is greater than that of a two-dimensional device. Internal axial illumination enhances the energy conversion efficiency of a rectangular fiber-based hybrid structure (see picture) by a factor of up to six compared to light illumination normal to the fiber axis from outside the device.
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