Academic literature on the topic 'NanoStreeM'

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Journal articles on the topic "NanoStreeM"

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Prodanov, Dimiter. "Management of health risk related to use of engineered nanomaterials. An analogy with biosafety." Biomedical Reviews 28 (March 23, 2018): 100–104. https://doi.org/10.14748/bmr.v28.4455.

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Safety of nanomaterials is a new scientific field, which draws increasing attention in literature. Among the challenges the field is facing are the insufficient amount and quality of nanotoxicological data and the ambiguity in the metrics describing the exposure. This results in substantial difficulties in the actual quantification of risk in terms of dose-response relationships and exposure limits, which is a cornerstone of chemical risk assessment. While there is no golden standard for risk assessment and management several pragmatic systems have come into being. All of these employ some for
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Glaser, Vicki. "An Interview with Stephen D. O'Connor, Ph.D. CEO, Nanostream." ASSAY and Drug Development Technologies 4, no. 6 (2006): 633–36. http://dx.doi.org/10.1089/adt.2006.4.633.

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Lipanov, Alexey M., A. A. Vakhrushev, and A. V. Vakhrushev. "NUMERICAL MODELING OF WATER NANOSTREAMS IN NANOTUBES." Nanomechanics Science and Technology: An International Journal 1, no. 4 (2010): 313–25. http://dx.doi.org/10.1615/nanomechanicsscitechnolintj.v1.i4.40.

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Minhas, U. I., M. Russell, S. Kaloutsakis, et al. "NanoStreams: A Microserver Architecture for Real-Time Analytics on Fast Data Streams." IEEE Transactions on Multi-Scale Computing Systems 4, no. 3 (2018): 396–409. http://dx.doi.org/10.1109/tmscs.2017.2764087.

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Sharma, L., O. Mizoo, and G. Pezzotti. "Structural Investigation into Poly-p-phenylenebenzobisoxazole Fibres." Polymers and Polymer Composites 13, no. 2 (2005): 131–37. http://dx.doi.org/10.1177/096739110501300202.

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Poly-p-phenylenebenzobisoxazole, Zylon™, is a fibre with numerous applications in the aerospace and sports (sail cloth, ski poles and tennis racquets) industries and was developed by the Toyobo Company in Japan. It is a lightweight material having higher tensile modulus and strength than graphite. From Raman nanostress mappings, using high resolution Raman piezospectroscopy, HRRP and electron microscopy, we have attempted to determine the structural changes occurring in two poly-p-phenylenebenzobisoxazole fibres prepared under different processing conditions. Fibre A was coagulated in aqueous
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Van, Hoornick Nausikaa, Dimiter Prodanov, and Alain Pardon. "Banding approach for engineered nanomaterial risk assessment and control." June 6, 2017. https://doi.org/10.1088/1742-6596/838/1/012017.

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Since there is a lack of sufficient toxicological information about engineered nanomaterials, and since within the semiconductor research and manufacturing use is already made of these materials, an alternative for the classical quantitative risk assessment was sought. Within the research facilities of Imec use is made of a banding technique to determine the risks associated with the nanomaterial research. The method and the measures that are taken are discussed in the paper. The method has been benchmarked with other available techniques.
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Dangal, Nabin K., Stith Wiggs, Brian Mueller, Damon L. Smith, and Daren S. Mueller. "Addition of Nanofertilizers and Nitrogen Fertilizer in Combination with Fluopyram Helps in SDS Management and Protecting Yield in Soybean." PhytoFrontiers™, April 25, 2025. https://doi.org/10.1094/phytofr-01-25-0005-r.

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Sudden death syndrome (SDS), caused primarily by Fusarium virguliforme, can result in significant yield losses in soybean in the U.S. Fluopyram is a seed treatment used for SDS management; however, its efficacy is not consistent. Little is known how seed treatments are affected by application of fertilizers. Field trials were conducted in Iowa from 2021 to 2023 to evaluate an non-treated control (NTC), a base (Allegiance FL + Stamina + Systiva XS Xemium brand + Poncho 600 + Flo Rite 1706 + Color Coat) seed treatment, and base combined with various nanofertilizers (NanoStress, NanoPhos, NanoK a
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Liang, Xiaobin, Takashi Kojima, Makiko Ito, et al. "In Situ Nanostress Visualization Method to Reveal the Micromechanical Mechanism of Nanocomposites by Atomic Force Microscopy." ACS Applied Materials & Interfaces, February 28, 2023. http://dx.doi.org/10.1021/acsami.2c22971.

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Liu, Jia, Liuting Zheng, Xinyue Li, et al. "Emerging of Ultrafine Membraneless Organelles as the Missing Piece of Nanostress: Mechanism of Biogenesis and Implications at Multilevels." ACS Nano, January 30, 2025. https://doi.org/10.1021/acsnano.4c15876.

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Dissertations / Theses on the topic "NanoStreeM"

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Perepichka, Iryna I. "Self-assembly of PS-PVP block copolymers and their complexes at the air/water interface." Thèse, 2011. http://hdl.handle.net/1866/4941.

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Une compréhension approfondie et un meilleur contrôle de l'auto-assemblage des copolymères diblocs (séquencés) et de leurs complexes à l'interface air/eau permettent la formation contrôlée de nanostructures dont les propriétés sont connues comme alternative à la nanolithographie. Dans cette thèse, des monocouches obtenues par les techniques de Langmuir et de Langmuir-Blodgett (LB) avec le copolymère dibloc polystyrène-poly(4-vinyl pyridine) (PS-PVP), seul ou complexé avec de petites molécules par liaison hydrogène [en particulier, le 3-n-pentadécylphénol (PDP)], ont été étudiées. Une partie im
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Conference papers on the topic "NanoStreeM"

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Georgakoudis, Giorgis, Charles Gillan, Ahmad Hassan, et al. "NanoStreams: Codesigned microservers for edge analytics in real time." In 2016 International Conference on Embedded Computer Systems: Architectures, Modeling and Simulation (SAMOS). IEEE, 2016. http://dx.doi.org/10.1109/samos.2016.7818346.

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