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Journal articles on the topic 'Nanofabric'

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1

Li, Yinfeng, Simanta Lahkar, Qingyuan Wei, Pizhong Qiao, and Han Ye. "Strength nature of two-dimensional woven nanofabrics under biaxial tension." International Journal of Damage Mechanics 28, no. 3 (2018): 367–79. http://dx.doi.org/10.1177/1056789518769343.

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Woven nanostructures have been acknowledged as a platform for solar cells, supercapacitors, and sensors, making them especially of interest in the fields of materials sciences, nanotechnology, and renewable energy. By employing molecular dynamics simulations, the mechanical properties of two-dimensional woven nanofabrics under biaxial tension are evaluated. Two-dimensional woven nanostructures composed of graphene and graphyne nanoribbons are examined. Dynamic failure process of both graphene woven nanofabric and graphyne woven nanofabric with the same woven unit cell initiates at the edge of
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2

Loizou, Katerina, Angelos Evangelou, Orestes Marangos, et al. "Assessing the performance of electrospun nanofabrics as potential interlayer reinforcement materials for fiber-reinforced polymers." Composites and Advanced Materials 30 (January 1, 2021): 263498332110025. http://dx.doi.org/10.1177/26349833211002519.

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Multiscale-reinforced polymers offer enhanced functionality due to the three different scales that are incorporated; microfiber, nanofiber, and nanoparticle. This work aims to investigate the applicability of different polymer-based nanofabrics, fabricated via electrospinning as reinforcement interlayers for multilayer-fiber-reinforced polymer composites. Three different polymers are examined; polyamide 6, polyacrylonitrile, and polyvinylidene fluoride, both plain and doped with multiwalled carbon nanotubes (MWCNTs). The effect of nanotube concentration on the properties of the resulting nanof
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3

Zhou, Yueding, Hongfeng Zhu, and Yingna Chao. "Innovative material applications in clothing design research." Materials Express 14, no. 5 (2024): 820–27. http://dx.doi.org/10.1166/mex.2024.2659.

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With the improvement of living standards, there is a growing demand for clothing that offers both comfort and functionality. Nanomaterials have emerged as a hot topic in clothing design due to their unique structure and performance characteristics. In this study, we develop a composite nanofabric with exceptional water resistance and breathability using polyurethane (PU), fluorinated polyurethane (FPU), and polyvinyl butyral (PVB), namely PU-FPU-PVB composite nanofabric. The mechanical properties, wettability, waterproofing, and thermal comfort are evaluated. The results demonstrate that optim
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4

Hazarika, Doli, Naba Kumar Kalita, Amit Kumar, and Vimal Katiyar. "Functionalized poly(lactic acid) based nano-fabric for anti-viral applications." RSC Advances 11, no. 52 (2021): 32884–97. http://dx.doi.org/10.1039/d1ra05352c.

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PLA based electrospun nanofabric prepared using ZL and SNC. Incorporation of SNC conferred hydrophobicity. Breathable and reusable nanofabric. PLA/ZL nanofabric demonstrated significant antibacterial & antiviral properties.
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5

Li, Ruya, Yang Si, Zijie Zhu, et al. "Supercapacitive Iontronic Nanofabric Sensing." Advanced Materials 29, no. 36 (2017): 1700253. http://dx.doi.org/10.1002/adma.201700253.

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6

Tsai, Shih Pang, Wei Wu, Hiroyoshi Sota, Toshiki Hirogaki, and Eiichhi Aoyama. "Investigation of Basic Characteristics of Waterproof-Breathable Nonwoven Nano-Fabric Manufactured by Improved Melt-Blowing Method." Key Engineering Materials 956 (September 29, 2023): 189–94. http://dx.doi.org/10.4028/p-gn0eog.

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In recent years, materials with both waterproof and breathability have also been marked with the eye-catching slogan of "waterproof-breathable" on the commodity such as personal protective equipment or sportswear. Regarding the application of nanofiber non-woven fabric as waterproof and breathable materials for functional textile, although there are previous reports regarding conventional micro-fabrics, the relationship between the compositions of the fiber aggregate, waterproof and breathable properties remain unclear regarding nanofabrics. Therefore, this study shows investigation of influen
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7

Chen, Min, Zhiping Chen, Xuewei Fu, and Wei-Hong Zhong. "A Janus protein-based nanofabric for trapping polysulfides and stabilizing lithium metal in lithium–sulfur batteries." Journal of Materials Chemistry A 8, no. 15 (2020): 7377–89. http://dx.doi.org/10.1039/d0ta01989e.

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8

Shivakumar, Kunigal, Shivalingappa Lingaiah, Huanchun Chen, Paul Akangah, Gowthaman Swaminathan, and Larry Russell. "Polymer Nanofabric Interleaved Composite Laminates." AIAA Journal 47, no. 7 (2009): 1723–29. http://dx.doi.org/10.2514/1.41791.

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9

Bubenchikov, Mikhail Alekseevich, Aleksey Mikhaylovich Bubenchikov, Anton Vadimovich Ukolov, Roman Yur’evich Ukolov, and Anna Sergeevna Chelnokova. "INVESTIGATION OF A CARBON NANOFABRIC PERMEABILITY." Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mekhanika, no. 57 (January 1, 2019): 62–75. http://dx.doi.org/10.17223/19988621/57/5.

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10

Kong, Lushi, Xuewei Fu, Xin Fan, et al. "A Janus nanofiber-based separator for trapping polysulfides and facilitating ion-transport in lithium–sulfur batteries." Nanoscale 11, no. 39 (2019): 18090–98. http://dx.doi.org/10.1039/c9nr04854e.

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The conductive CNF side of the Janus CNF@PI separator used in Li–S battery can effectively trap and convert polysulfides and the insulated PI nanofabric side separates the electrodes and facilitates Li<sup>+</sup>-transport in Li–S battery.
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11

Ng, Vianessa, Guangfeng Hou, Jay Kim, Gregory Beaucage, and Mark J. Schulz. "Carbon nanofabric: A multifunctional fire-resistant material." Carbon Trends 7 (April 2022): 100165. http://dx.doi.org/10.1016/j.cartre.2022.100165.

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12

Ashjaran, Ali, Mohammad Esmail Yazdanshenas, Abosaeed Rashidi, Ramin Khajavi, and Abbas Rezaee. "Overview of bio nanofabric from bacterial cellulose." Journal of the Textile Institute 104, no. 2 (2013): 121–31. http://dx.doi.org/10.1080/00405000.2012.703796.

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13

Ding, Chenfeng, Yiran Guo, Juejing Liu, et al. "A Super-breathable “Woven-like” Protein Nanofabric." ACS Applied Bio Materials 3, no. 5 (2020): 2958–64. http://dx.doi.org/10.1021/acsabm.0c00008.

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14

Lackowski, Marcin, Andrzej Krupa, and Anatol Jaworek. "Nanofabric nonwoven mat for filtration smoke and nanoparticles." Polish Journal of Chemical Technology 15, no. 2 (2013): 48–52. http://dx.doi.org/10.2478/pjct-2013-0023.

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The process of production of filtration mats of various thickness from PVC and PVDF polymers by the electrospinning method is presented in the paper. Filtration of nanoparticles and submicron particles is an important problem in industry and health protection systems, in particular in air-conditioning and ventilation appliances. This problem can be effectively solved by application of non-woven fibrous filtration mats. The experimental investigations of mechanical properties of nanofibrous filtration mats produced by electrospinning and the measurements of removal efficiency of submicron parti
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15

Park, Dae-Ung, Heung-Sik Um, Beom-Seok Chang, et al. "Controlled releasing properties of gelatin nanofabric device containing chlorhexidine." Oral Biology Research 45, no. 2 (2021): 90–98. http://dx.doi.org/10.21851/obr.45.02.202106.90.

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16

Krishna, B. N. Vamsi, Jai Bhagwan, and Jae Su Yu. "Sol-Gel Routed NiMn2O4 Nanofabric Electrode Materials for Supercapacitors." Journal of The Electrochemical Society 166, no. 10 (2019): A1950—A1955. http://dx.doi.org/10.1149/2.0661910jes.

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17

Sigman, Michael B., and Brian A. Korgel. "Solventless Synthesis of Bi2S3(Bismuthinite) Nanorods, Nanowires, and Nanofabric." Chemistry of Materials 17, no. 7 (2005): 1655–60. http://dx.doi.org/10.1021/cm0478733.

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18

Shao, Beibei, Zheheng Song, Xin Chen, et al. "Bioinspired Hierarchical Nanofabric Electrode for Silicon Hydrovoltaic Device with Record Power Output." ACS Nano 15, no. 4 (2021): 7472–81. http://dx.doi.org/10.1021/acsnano.1c00891.

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19

Khitun, A., Mingqiang Bao, and K. L. Wang. "Spin Wave Magnetic NanoFabric: A New Approach to Spin-Based Logic Circuitry." IEEE Transactions on Magnetics 44, no. 9 (2008): 2141–52. http://dx.doi.org/10.1109/tmag.2008.2000812.

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20

Liu, Qianru, Yan Gao, Pinggui He, et al. "Facile fabrication of hollow structured Si-Ni-C nanofabric anode for Li-ion battery." Materials Letters 231 (November 2018): 205–8. http://dx.doi.org/10.1016/j.matlet.2018.08.044.

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21

Yilmaz, Seyhan. "Early experience with a novel self-sealing nanofabric vascular graft for early hemodialysis access." Vascular 24, no. 4 (2016): 421–24. http://dx.doi.org/10.1177/1708538115607421.

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Aim To report initial experience regarding the use of novel self-sealing electrospun nanofabric graft. Material and methods A total of 21 patients aged between 22 and 64 (male:female ratio = 11:10) underwent AVflo vascular access graft implantation to forearm. Information for patency at 6 and 12 months after the operation was obtained. Cannulation for hemodialysis was allowed 8 h after the operation, as needed. Results Cannulation was performed before 12th hour of implantation in two patients, between 12th and 24th postoperative hours in 10 patients and between 12th and 24th postoperative hour
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22

Giacomin, Edouard, Sumanth Gudaparthi, Juergen Boemmels, Rajeev Balasubramonian, Francky Catthoor, and Pierre-Emmanuel Gaillardon. "A Multiply-and-Accumulate Array for Machine Learning Applications Based on a 3D Nanofabric Flow." IEEE Transactions on Nanotechnology 20 (2021): 873–82. http://dx.doi.org/10.1109/tnano.2021.3132224.

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23

Singh, Mandeep, Ashish Gupta, Shashank Sundriyal, Prashant Dubey, Karishma Jain, and S. R. Dhakate. "Activated green carbon-based 2-D nanofabric mats for ultra-flexible all-solid-state supercapacitor." Journal of Energy Storage 49 (May 2022): 104193. http://dx.doi.org/10.1016/j.est.2022.104193.

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24

Inoue, Shun-ichi, Hidetoshi Tsuda, Toshihisa Tanaka, Masatoshi Kobayashi, Yoshiko Magoshi, and Jun Magoshi. "Nanostructure of Natural Fibrous Protein: In Vitro Nanofabric Formation ofSamiacynthiariciniWild Silk Fibroin by Self-Assembling." Nano Letters 3, no. 10 (2003): 1329–32. http://dx.doi.org/10.1021/nl0340327.

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25

Shetty, Sawan, Arunjunairaj Mahendran, and S. Anandhan. "Development of a new flexible nanogenerator from electrospun nanofabric based on PVDF/talc nanosheet composites." Soft Matter 16, no. 24 (2020): 5679–88. http://dx.doi.org/10.1039/d0sm00341g.

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26

Cho, Chia-Jung, Ping-Yu Chung, Ying-Wen Tsai, Yu-Tong Yang, Shih-Yu Lin, and Pin-Shu Huang. "Stretchable Sensors: Novel Human Motion Monitoring Wearables." Nanomaterials 13, no. 16 (2023): 2375. http://dx.doi.org/10.3390/nano13162375.

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A human body monitoring system remains a significant focus, and to address the challenges in wearable sensors, a nanotechnology-enhanced strategy is proposed for designing stretchable metal-organic polymer nanocomposites. The nanocomposite comprises reduced graphene oxide (rGO) and in-situ generated silver nanoparticles (AgNPs) within elastic electrospun polystyrene-butadiene-polystyrene (SBS) fibers. The resulting Sandwich Structure Piezoresistive Woven Nanofabric (SSPWN) is a tactile-sensitive wearable sensor with remarkable performance. It exhibits a rapid response time (less than three mil
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27

Filho, José B. G., Carlos G. O. Bruziquesi, Regiane D. F. Rios, et al. "Selective visible-light-driven toxicity breakdown of nerve agent simulant methyl paraoxon over a photoactive nanofabric." Applied Catalysis B: Environmental 285 (May 2021): 119774. http://dx.doi.org/10.1016/j.apcatb.2020.119774.

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28

Oh, Jin Young, Tae Il Lee, Woo Soon Jang, et al. "Mass production of a 3D non-woven nanofabric with crystalline P3HT nanofibrils for organic solar cells." Energy & Environmental Science 6, no. 3 (2013): 910. http://dx.doi.org/10.1039/c2ee23987f.

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29

Toldy, Andrea, Gábor Szebényi, Kolos Molnár, et al. "The Effect of Multilevel Carbon Reinforcements on the Fire Performance, Conductivity, and Mechanical Properties of Epoxy Composites." Polymers 11, no. 2 (2019): 303. http://dx.doi.org/10.3390/polym11020303.

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We studied the effect of a multilevel presence of carbon-based reinforcements—a combination of conventional load-bearing unidirectional carbon fiber (CF) with multiwalled carbon nanotubes (CNT) and conductive CNT-containing nonwoven carbon nanofabric (CNF(CNT))—on the fire performance, thermal conductivity, and mechanical properties of reference and flame-retarded epoxy resin (EP) composites. The inclusion of carbon fibers and flame retardant reduced the peak heat release rate (pHRR) of the epoxy resins. The extent to which the nanoreinforcements reduced the pHRR depended on their influence on
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30

Khalifa, Mohammed, and S. Anandhan. "Highly sensitive and wearable NO2 gas sensor based on PVDF nanofabric containing embedded polyaniline/g-C3N4 nanosheet composites." Nanotechnology 32, no. 48 (2021): 485504. http://dx.doi.org/10.1088/1361-6528/ac1f54.

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31

Kakunuri, M., S. Kaushik, A. Saini, and C. S. Sharma. "SU-8/MWCNT derived Electrospun Composite Carbon Nanofabric as a High Performance Anode Material for Lithium Ion Battery." ECS Transactions 72, no. 1 (2016): 69–74. http://dx.doi.org/10.1149/07201.0069ecst.

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32

Sun, Pingping, Xueying Zhao, Renpeng Chen, et al. "Li3V2(PO4)3encapsulated flexible free-standing nanofabric cathodes for fast charging and long life-cycle lithium-ion batteries." Nanoscale 8, no. 14 (2016): 7408–15. http://dx.doi.org/10.1039/c5nr08832a.

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33

Chen, Renpeng, Xiaolan Xue, Jingyu Lu, et al. "The dealloying–lithiation/delithiation–realloying mechanism of a breithauptite (NiSb) nanocrystal embedded nanofabric anode for flexible Li-ion batteries." Nanoscale 11, no. 18 (2019): 8803–11. http://dx.doi.org/10.1039/c9nr00159j.

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34

Hazarika, Doli, Gourhari Chakraborty, Amit Kumar, and Vimal Katiyar. "Role of silk nanocrystal (SNC)-ZnO as an antibacterial nucleating nanohybrid for a patterned mimic poly(lactic acid) based nanofabric." International Journal of Biological Macromolecules 242 (July 2023): 125126. http://dx.doi.org/10.1016/j.ijbiomac.2023.125126.

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35

Chen, Renpeng, Xiaolan Xue, Yi Hu, et al. "Intermetallic SnSb nanodots embedded in carbon nanotubes reinforced nanofabric electrodes with high reversibility and rate capability for flexible Li-ion batteries." Nanoscale 11, no. 28 (2019): 13282–88. http://dx.doi.org/10.1039/c9nr04645c.

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36

Kong, Lushi, Nanxi Dong, Guofeng Tian, Shengli Qi, and Dezhen Wu. "Highly enhanced Raman scattering with good reproducibility observed on a flexible PI nanofabric substrate decorated by silver nanoparticles with controlled size." Applied Surface Science 511 (May 2020): 145443. http://dx.doi.org/10.1016/j.apsusc.2020.145443.

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37

Lee, Joon Seok, Kyu Ha Choi, Han Do Ghim, et al. "Role of molecular weight of atactic poly(vinyl alcohol) (PVA) in the structure and properties of PVA nanofabric prepared by electrospinning." Journal of Applied Polymer Science 93, no. 4 (2004): 1638–46. http://dx.doi.org/10.1002/app.20602.

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38

Wang, Caihong, Lingling Feng, Sijun Xu, et al. "Fabrication of reusable bioprotective nanofabric with passive nano-Ag/Joule thermal disinfection properties for real-time wireless fine biomotion and gesture sensing." Nano Energy 124 (June 2024): 109525. http://dx.doi.org/10.1016/j.nanoen.2024.109525.

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39

Deng, Gang, Lu Yao, Mingzhao Chen, Yuanyuan Yang, Song Lu, and Guohua Wu. "The Photothermal Conversion and UV Resistance of Silk Fabrics Being Achieved through Surface Modification with C@SiO2 Nanoparticles." Molecules 28, no. 24 (2023): 7970. http://dx.doi.org/10.3390/molecules28247970.

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With the improvement in people’s living standards, the development and application of smart textiles are receiving increasing attention. In this study, a carbon nanosurface was successfully coated with a SiO2 layer to form C@SiO2 nanomaterials, which improved the dispersion of carbon nanomaterials in an aqueous solution and enhanced the absorption of light by the carbon nanoparticles. C@SiO2 nanoparticles were coupled on the surface of silk fabric with the silane coupling agent KH570 to form C@SiO2 nanosilk fabric. The silk fabric that was subjected to such surface modification was endowed wit
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40

Shami, Zahed, Seyed Mojtaba Amininasab, and Pegah Shakeri. "Structure–Property Relationships of Nanosheeted 3D Hierarchical Roughness MgAl–Layered Double Hydroxide Branched to an Electrospun Porous Nanomembrane: A Superior Oil-Removing Nanofabric." ACS Applied Materials & Interfaces 8, no. 42 (2016): 28964–73. http://dx.doi.org/10.1021/acsami.6b07744.

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41

Goldstein, Seth Copen, and Mihai Budiu. "NanoFabrics." ACM SIGARCH Computer Architecture News 29, no. 2 (2001): 178–91. http://dx.doi.org/10.1145/384285.379262.

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42

Laha, Anindita, Saptarshi Majumdar, and Chandra S. Sharma. "Controlled Drug Release Formulation by Sequential Crosslinking of Multilayered Electrospun Gelatin Nanofiber Mat." MRS Advances 1, no. 29 (2016): 2107–13. http://dx.doi.org/10.1557/adv.2016.320.

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ABSTRACTThe major aim of the present study is to develop and explore the potential of large surface area electrospun polymer nanofabric as a carrier for controlled and sustained release, in particular for hydrophobic drugs. Gelatin (type A), FDA approved natural polymer was electrospun in a mixture of solvent (20% acetic acid in water) to yield long, continuous and uniform fibers with average diameter ∼ 200 nm. Piperine was chosen as a model hydrophobic drug in this study. As gelatin is highly soluble in aqueous medium, we crosslinked electrospun gelatin nanofibers using saturated GTA vapor to
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43

Khan, Nida Tabassum, and Muhammad Jibran Khan. "Nanofabrics—The Smart Textile." Engineering Advances 1, no. 1 (2021): 26–30. http://dx.doi.org/10.26855/ea.2021.06.005.

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44

Ryosuke, Sato, Gaku Yamaguchi, Daisuke Nagai, et al. "Adsorption dynamics of tannin on deacetylated electrospun Konjac glucomannan fabric." Soft Matter 14, no. 14 (2018): 2712–23. http://dx.doi.org/10.1039/c8sm00123e.

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We demonstrate the adsorption dynamics of Konjac glucomannan electrospun nanofabrics consisting of an initial diffusion-limited stage and a late stoichiometric relaxation stage and show how to design efficient adsorption using the crossover time.
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45

Feinberg, Adam W., and Kevin Kit Parker. "Surface-Initiated Assembly of Protein Nanofabrics." Nano Letters 10, no. 6 (2010): 2184–91. http://dx.doi.org/10.1021/nl100998p.

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46

Demo, Pavel, Šárka Hošková, Marina Davydova, et al. "Nucleation on Polymer Nanofibers and their Controllable Conversion to Protective Layers: Preliminary Theoretical Study." Key Engineering Materials 466 (January 2011): 201–5. http://dx.doi.org/10.4028/www.scientific.net/kem.466.201.

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Nanofibers are very promising new type of material with a broad range of possible applications. The new NANOSPIDER technology opens a possibility to produce nanofabrics in an amount large enough for them to start being interesting as a construction material. There are many so-called passive applications of nanotextiles (including different types of filters and protective layers), and active applications, when the active chemical agent is incorporated in their structure. In the present paper, however, the new possible application of nanofabrics is proposed: as a base material on which technical
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47

Datta, Kushal, Arindam Mukherjee, and Arun Ravindran. "Automated design flow for diode-based nanofabrics." ACM Journal on Emerging Technologies in Computing Systems 2, no. 3 (2006): 219–41. http://dx.doi.org/10.1145/1167943.1167946.

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48

Mosinger, Jiří, Oldřich Jirsák, Pavel Kubát, Kamil Lang, and Bedřich Mosinger. "Bactericidal nanofabrics based on photoproduction of singlet oxygen." J. Mater. Chem. 17, no. 2 (2007): 164–66. http://dx.doi.org/10.1039/b614617a.

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49

Ding, Chenfeng, Lingbo Huang, Jinle Lan, Yunhua Yu, Wei‐Hong Zhong, and Xiaoping Yang. "Superresilient Hard Carbon Nanofabrics for Sodium‐Ion Batteries." Small 16, no. 11 (2020): 1906883. http://dx.doi.org/10.1002/smll.201906883.

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50

He, Chen, and Margarida F. Jacome. "Defect-Aware High-Level Synthesis Targeted at Reconfigurable Nanofabrics." IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems 26, no. 5 (2007): 817–33. http://dx.doi.org/10.1109/tcad.2006.884401.

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