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Journal articles on the topic 'Dispersible materials'

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1

Hegde, Divya, Kirankumar Hullatti, Vishakha Parab Gaonkar, and Uday Kumar Bolmal. "PREPARATION OF POLYHERBAL DISPERSIBLE TABLET AND EVALUATION BY RP-HPLC." INDIAN DRUGS 57, no. 04 (2020): 32–39. http://dx.doi.org/10.53879/id.57.04.11931.

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The aim of the present study was to convert an Ayurvedic formulation, “trikatu churna”, into a polyherbal dispersible tablet. Standardization parameters were performed for raw materials, trikatu churna and its extract. The standardized extract was further used for formulation of the dispersible tablet. The evaluation of raw materials, trikatu churna, trikatu extract and dispersible tablet was done using preliminary phytochemical and physico-chemical tests. The pre- and post-compression parameters for polyherbal dispersible tablet formulation were within the acceptance range. The piperine conte
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2

Zhong, Wei Qiu, Guo Sun, Li Yuan Xie, and Ye Ma. "Compression Performance of Non-Dispersible Concrete Columns." Advanced Materials Research 255-260 (May 2011): 462–66. http://dx.doi.org/10.4028/www.scientific.net/amr.255-260.462.

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A large number of non-dispersible underwater concrete materials will be extensively used in works which span over rivers and sea, so it is important to study the performance of non-dispersible under water concrete structures. Non-dispersible underwater concrete is the concrete mixing with special additives-anti-washout admixture, which is a kind of water-soluble polymers with long-chain structure and strong absorption capacity. In the present paper, the axial and eccentric compression performance of non-dispersible underwater concrete columns were experimentally investigated. The failure modes
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3

Kim, Jaemin, Chuanbing Rong, J. Ping Liu, and Shouheng Sun. "Dispersible Ferromagnetic FePt Nanoparticles." Advanced Materials 21, no. 8 (2009): 906–9. http://dx.doi.org/10.1002/adma.200801620.

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4

Wu, Huijun. "Study on mechanical properties of non-dispersible concrete in seawater environment." International Journal of Structural Integrity 11, no. 6 (2019): 809–18. http://dx.doi.org/10.1108/ijsi-07-2019-0069.

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Purpose The purpose of this paper is to research the hardened properties of non-dispersible concrete in seawater environment, especially in seawater environment. Design/methodology/approach The main approach is according to the experiment. Findings The findings of this paper are: first, because of the washing effect of water, the strength of underwater non-dispersible concrete is lower than that of terrestrial concrete. Second, the strength of non-dispersible underwater concrete with silica fume increases remarkably at different ages. Third, underwater non-dispersible concrete does not produce
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5

Gonzalez-Carrero, Soranyel, Guillermo Mínguez Espallargas, Raquel E. Galian, and Julia Pérez-Prieto. "Blue-luminescent organic lead bromide perovskites: highly dispersible and photostable materials." Journal of Materials Chemistry A 3, no. 26 (2015): 14039–45. http://dx.doi.org/10.1039/c5ta01765c.

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Blue-luminescent and dispersible organic–inorganic hybrid perovskites can be produced with a high reaction yield and valuable optical properties, such as luminescence quantum yield over 20% and high photostability under UV light. This material can be assembled–disassembled reversibly.
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6

Zhang, Guoxian, Pratap C. Naha, Prabhat Gautam, David P. Cormode, and Julian M. W. Chan. "Water-Dispersible Bismuth–Organic Materials with Computed Tomography Contrast Properties." ACS Applied Bio Materials 1, no. 6 (2018): 1918–26. http://dx.doi.org/10.1021/acsabm.8b00488.

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7

Huijun, Wu, Zhan Diao, and Kaizuo Fan. "Study on durability of non-dispersible concrete in seawater environment." International Journal of Structural Integrity 11, no. 3 (2019): 443–52. http://dx.doi.org/10.1108/ijsi-07-2019-0066.

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Purpose The purpose of this paper is to focus on the durability of underwater non-dispersible concrete in seawater environment. Design/methodology/approach In this paper, ten groups of underwater non-dispersible concrete mixtures were designed, and the anti-dispersibility and fluidity of the mixtures were tested. Findings The durability test analysis shows that different pouring methods have different effects on the durability of concrete. The durability of concrete poured on land is better than that poured in water. Different mineral admixtures have different effects on the durability of conc
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8

Dong, Ying, Tianli Zhang, Zhengcai Xia, et al. "Dispersible SmCo5 nanoparticles with huge coercivity." Nanoscale 11, no. 36 (2019): 16962–67. http://dx.doi.org/10.1039/c9nr06653e.

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9

Van Devener, Brian, Jesus Paulo L. Perez, and Scott L. Anderson. "Air-stable, unoxidized, hydrocarbon-dispersible boron nanoparticles." Journal of Materials Research 24, no. 11 (2009): 3462–64. http://dx.doi.org/10.1557/jmr.2009.0412.

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Here we describe a simple method to produce boron nanoparticles with control over surface chemistry and dispersiblity in different solvents, with potential applications ranging from high energy density fuels to neutron capture therapy. The methodology should be adaptable to many hard materials; indeed, we have produced hydrocarbon-dispersible silicon nanoparticles using a procedure similar to that described below. The method, based on high-energy milling, with subsequent sedimentation to separate aggregates, produces gram quantities of nanoparticles in a narrow distribution of particle sizes c
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10

Filipovich, A. Yu, V. K. Grishchenko, A. V. Barantsova, and Yu P. Gomza. "Peculiar features of curing epoxy oligomers in water-dispersible painting materials." Polymer Science Series D 4, no. 1 (2011): 32–35. http://dx.doi.org/10.1134/s1995421211010047.

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11

Williams, D. Bradley G., Jennifer M. Mason, Cameron J. Tristram, and Simon F. R. Hinkley. "Cellulose as a Source of Water Dispersible Renewable Film-Forming Materials." Macromolecules 48, no. 23 (2015): 8497–508. http://dx.doi.org/10.1021/acs.macromol.5b02131.

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12

Zhou, Shenghai, Jin Li, Feng Zhang, Tianyi Zhang, Hao Huang, and Wenbo Song. "Dispersible mesoporous carbon nanospheres as active electrode materials for biomolecular sensing." Microporous and Mesoporous Materials 202 (January 2015): 73–79. http://dx.doi.org/10.1016/j.micromeso.2014.09.052.

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13

Flake, Aaliyah, and Koen Vercruysse. "The Invisible Fraction within Melanin Capable of Absorbing UV Light and with Fluorescent Properties: Is It Lacking Consideration?" International Journal of Molecular Sciences 25, no. 15 (2024): 8490. http://dx.doi.org/10.3390/ijms25158490.

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Expanding on earlier observations, we show that many melanin materials, in vitro synthesized from a wide range of precursors, can be fractionated into a dark-colored precipitate and a near-colorless, dispersible fraction. The dispersible fractions exhibited absorbance in the UVA and UVB range of the electromagnetic spectrum, but none in the visible range. In addition, fluorescent properties were associated with all dispersible fractions obtained. FT-IR spectroscopic analyses were performed to compare both types of fractions. Overall, it appears that some of the properties associated with melan
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14

Feng, Boyuan, Heng Zhi, Hongyan Chen, et al. "Development of Chlorantraniliprole and Lambda Cyhalothrin Double-Loaded Nano-Microcapsules for Synergistical Pest Control." Nanomaterials 11, no. 10 (2021): 2730. http://dx.doi.org/10.3390/nano11102730.

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Nanotechnology could greatly improve global agricultural food production. Chlorantraniliprole and lambda cyhalothrin double-loaded nano-microcapsules were fabricated to enhance the control of pests by pesticides and improve the pesticide utilization efficiency. The nano-microcapsules were synthesized using a method involving the solid in oil in water encapsulation technique and solvent evaporation. The nano-microcapsules slowly and simultaneously released lambda cyhalothrin and chlorantraniliprole. The cumulative lambda cyhalothrin and chlorantraniliprole release rates at 40 h were 80% and 70%
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15

Hao, Du. "Survey on the Performance of Underwater Non-dispersive Concrete." Journal of Engineering Research and Reports 24, no. 9 (2023): 37–43. http://dx.doi.org/10.9734/jerr/2023/v24i9841.

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Ordinary concrete in the water is poured by the erosion of water flow when the dispersion resistance is insufficient, easy to make cement and aggregate separation, resulting in concrete compressive strength and work performance greatly reduced, and often must be complemented by cofferdam and other construction methods, high cost. And underwater non-dispersible steel fiber concrete can be poured directly in water, greatly simplifying the construction process, simple and economic. Because of the effect of flocculant, the concrete still has good working and mechanical properties when it is washed
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16

Liu, Xin, Hui Wang, Shulan Zuo, et al. "Dispersible and manipulable magnetic L10-FePt nanoparticles." Nanoscale 12, no. 14 (2020): 7843–48. http://dx.doi.org/10.1039/c9nr10302c.

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17

Jiang, Cong-sheng, Lin-nu Lu, Shao-bo Guan, Qing-jun Ding, and Shu-guang Hu. "Preparation of high performance non-dispersible concrete." Journal of Wuhan University of Technology-Mater. Sci. Ed. 19, no. 2 (2004): 67–69. http://dx.doi.org/10.1007/bf03000173.

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18

Wang, Peng, Shengyan Pu, Wen Zhang, Lin Shi, and Di Zhang. "Revisiting the influence of chemical oxidation on the adsorption properties of carbonaceous materials with different structures: Non-dispersible versus dispersible structure." Separation and Purification Technology 286 (April 2022): 120516. http://dx.doi.org/10.1016/j.seppur.2022.120516.

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19

Fujisawa, Shuji, Eiji Togawa, Katsushi Kuroda, Tsuguyuki Saito, and Akira Isogai. "Fabrication of ultrathin nanocellulose shells on tough microparticles via an emulsion-templated colloidal assembly: towards versatile carrier materials." Nanoscale 11, no. 32 (2019): 15004–9. http://dx.doi.org/10.1039/c9nr02612f.

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Ultrathin nanocellulose shells are constructed on the surface of polymer microparticles by an emulsion-templated self-assembly. The shell renders the microparticles biocompatible and highly dispersible in water with molecular recognition properties.
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20

Liu, Jin, Huanting Wang, and Lixiong Zhang. "Highly Dispersible Molecular Sieve Carbon Nanoparticles." Chemistry of Materials 16, no. 22 (2004): 4205–7. http://dx.doi.org/10.1021/cm0493400.

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21

Tanaka, Yasushi, and Shinya Maenosono. "Amine-terminated water-dispersible FePt nanoparticles." Journal of Magnetism and Magnetic Materials 320, no. 19 (2008): L121—L124. http://dx.doi.org/10.1016/j.jmmm.2008.05.011.

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22

Elgiddawy, Nada, Shiwei Ren, Abderrahim Yassar, et al. "Dispersible Conjugated Polymer Nanoparticles as Biointerface Materials for Label-Free Bacteria Detection." ACS Applied Materials & Interfaces 12, no. 36 (2020): 39979–90. http://dx.doi.org/10.1021/acsami.0c08305.

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23

Milakin, Konstantin A., Zuzana Morávková, Oumayma Taboubi, Udit Acharya, Ognen Pop-Georgievski, and Patrycja Bober. "Facile preparation of water-dispersible carboxylated polyaniline." Synthetic Metals 293 (March 2023): 117249. http://dx.doi.org/10.1016/j.synthmet.2022.117249.

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24

Zhang, Yinjiang, Chao Deng, Yuxiao Wang, Chen Huang, Yi Zhao, and Xiangyu Jin. "A new dispersible moist wipe from wetlaid/spunlace nonwoven: Development and characterization." Journal of Industrial Textiles 48, no. 7 (2018): 1136–50. http://dx.doi.org/10.1177/1528083718757524.

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Wood pulp/Danufil nonwovens have been prepared by wetlaid/spunlace method as a potential and new dispersible moist wipes. To verify the potential applications of the wetlaid/spunlace nonwovens, this study investigated the wet strength, softness/smoothness, and dispersibility of wetlaid/spunlace nonwovens with different Danufil contents and length-to-diameter ratios. Meanwhile, these properties were compared with three other types of commonly-used dispersible moist wipes. The results show that an increase in Danufil content or length-to-diameter ratio results in increasing wet strength and decr
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25

Jatav, Sanjay, Kaline P. Furlan, Junying Liu, and Eric H. Hill. "Heterostructured Monolayer MoS2 Nanoparticles toward Water-Dispersible Catalysts." ACS Applied Materials & Interfaces 12, no. 17 (2020): 19813–22. http://dx.doi.org/10.1021/acsami.0c02246.

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26

Jo, Woo-Geun, Mashooq Khan, Loon-Seng Tan, Ho-Shin Jeong, Shin-Hee Lee, and Soo-Young Park. "Polypyrrole nanocomposite with water-dispersible graphene." Macromolecular Research 25, no. 4 (2017): 335–43. http://dx.doi.org/10.1007/s13233-017-5050-8.

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27

Cheng, Chih-Chia, Adem Ali Muhabie, Shan-You Huang, et al. "Dual stimuli-responsive supramolecular boron nitride with tunable physical properties for controlled drug delivery." Nanoscale 11, no. 21 (2019): 10393–401. http://dx.doi.org/10.1039/c8nr09537j.

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28

Koutsioukis, Apostolos, Vassiliki Belessi, and Vasilios Georgakilas. "Solid phase functionalization of MWNTs: an eco-friendly approach for carbon-based conductive inks." Green Chemistry 23, no. 15 (2021): 5442–48. http://dx.doi.org/10.1039/d1gc01043c.

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Carbon nanotubes functionalized by a solvent free reaction are mixed with graphene nanosheets into a water dispersible all carbon hybrid, which combined with a resin from renewable materials leads to an eco-friendly conductive all carbon ink.
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29

Shan, Guo-Bin, and George P. Demopoulos. "The synthesis of aqueous-dispersible anatase TiO2nanoplatelets." Nanotechnology 21, no. 2 (2009): 025604. http://dx.doi.org/10.1088/0957-4484/21/2/025604.

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30

Ma'shum, M., JM Oades, and ME Tate. "The use of dispersible clays to reduce water repellency of sandy soils." Soil Research 27, no. 4 (1989): 797. http://dx.doi.org/10.1071/sr9890797.

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Water-repellency in sandy soils is determined by the amount of hydrophobic organic matter coating the sand particles and the specific surface area of the sands. The hydrophobic state can be simulated by coating hydrophilic sand with cetyl alcohol. Admixture of finely particulate materials with either naturally occurring water-repellent sands or the model cetyl alcohol-coated sand markedly reduced the water-repellency. Dispersible sodic clays were more effective than calcium saturated clays in reducing water-repellency, suggesting that the addition of dispersible, fine-grained illites and kaoli
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31

Zhang, Shumin, Chaoran Li, Yingying Yu, et al. "A general and mild route to highly dispersible anisotropic magnetic colloids for sensing weak magnetic fields." Journal of Materials Chemistry C 6, no. 20 (2018): 5528–35. http://dx.doi.org/10.1039/c8tc00263k.

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32

Han, Ting, Ye Yuan, Xiao Liang, Yang Zhang, Chuanxi Xiong, and Lijie Dong. "Colloidal stable quantum dots modified by dual functional group polymers for inkjet printing." Journal of Materials Chemistry C 5, no. 19 (2017): 4629–35. http://dx.doi.org/10.1039/c7tc00452d.

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33

Murase, Norio, and Mingyuan Gao. "Preparation and photoluminescence of water-dispersible ZnSe nanocrystals." Materials Letters 58, no. 30 (2004): 3898–902. http://dx.doi.org/10.1016/j.matlet.2004.03.055.

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34

Veluri, Venkateswara Rao, and Alan L. Justus. "Risk-based Containment and Air Monitoring Criteria for Work with Dispersible Radioactive Materials." Health Physics 104, no. 4 (2013): 419–27. http://dx.doi.org/10.1097/hp.0b013e318282de97.

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35

Zhang, Yiting, Haruto Obuchi, and Taro Toyota. "A Practical Guide to Preparation and Applications of Giant Unilamellar Vesicles Formed via Centrifugation of Water-in-Oil Emulsion Droplets." Membranes 13, no. 4 (2023): 440. http://dx.doi.org/10.3390/membranes13040440.

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Giant vesicles (GVs), which are closed lipid bilayer membranes with a diameter of more than 1 μm, have attracted attention not only as model cell membranes but also for the construction of artificial cells. For encapsulating water-soluble materials and/or water-dispersible particles or functionalizing membrane proteins and/or other synthesized amphiphiles, giant unilamellar vesicles (GUVs) have been applied in various fields, such as supramolecular chemistry, soft matter physics, life sciences, and bioengineering. In this review, we focus on a preparation technique for GUVs that encapsulate wa
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36

Vasiliev, Aleksey N., Eric A. Gulliver, Johannes G. Khinast, and Richard E. Riman. "Highly dispersible polymer-coated silver Nanoparticles." Surface and Coatings Technology 203, no. 19 (2009): 2841–44. http://dx.doi.org/10.1016/j.surfcoat.2009.02.019.

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37

Su, Yuanyuan, Xiaoyuan Ji, and Yao He. "Water-Dispersible Fluorescent Silicon Nanoparticles and their Optical Applications." Advanced Materials 28, no. 47 (2016): 10567–74. http://dx.doi.org/10.1002/adma.201601173.

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38

Kang, Shi‐Zhao, Dieer Yin, Xiangqing Li, Qiang Zhang, and Jin Mu. "Preparation of water‐dispersible TiO 2 nanoparticles." Micro & Nano Letters 9, no. 12 (2014): 940–43. http://dx.doi.org/10.1049/mnl.2014.0305.

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39

Hazra, Chanchal, Sajjad Ullah, York E. Serge Correales, Laís G. Caetano, and Sidney J. L. Ribeiro. "Enhanced NIR-I emission from water-dispersible NIR-II dye-sensitized core/active shell upconverting nanoparticles." Journal of Materials Chemistry C 6, no. 17 (2018): 4777–85. http://dx.doi.org/10.1039/c8tc00335a.

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40

Gohari Derakhshandeh, Parviz, Sara Abednatanzi, Laurens Bourda, et al. "A lanthanide-functionalized covalent triazine framework as a physiological molecular thermometer." Journal of Materials Chemistry C 9, no. 20 (2021): 6436–44. http://dx.doi.org/10.1039/d1tc00999k.

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41

Kurowska, Izabela, Baptiste Amouroux, Marvin Langlais, et al. "Versatile thiolactone-based conjugation strategies to polymer stabilizers for multifunctional upconverting nanoparticles aqueous dispersions." Nanoscale 14, no. 6 (2022): 2238–47. http://dx.doi.org/10.1039/d1nr05548h.

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Well-defined phosphonic acid-terminated polymers were synthesized from amine-terminated polymer precursors and a phosphonated thiolactone and were used to prepare stable, water-dispersible multifunctional upconverting luminescent nanohybrids.
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42

Yadav, Sharda, Mostafa Kamal Masud, Md Nazmul Islam, et al. "Correction: Gold-loaded nanoporous iron oxide nanocubes: a novel dispersible capture agent for tumor-associated autoantibody analysis in serum." Nanoscale 9, no. 36 (2017): 13829. http://dx.doi.org/10.1039/c7nr90194a.

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Correction for ‘Gold-loaded nanoporous iron oxide nanocubes: a novel dispersible capture agent for tumor-associated autoantibody analysis in serum’ by Sharda Yadav et al., Nanoscale, 2017, 9, 8805–8814.
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43

Novac, Marian, Adina Magdalena Musuc, Emma Adriana Ozon та ін. "Design and Evaluation of Orally Dispersible Tablets Containing Amlodipine Inclusion Complexes in Hydroxypropyl-β-cyclodextrin and Methyl-β-cyclodextrin". Materials 15, № 15 (2022): 5217. http://dx.doi.org/10.3390/ma15155217.

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The development of new orally dispersible tablets containing amlodipine (AML) inclusion complexes in hydroxypropyl-β-cyclodextrin (HP-β-CD) and in methyl-β-cyclodextrin (Me-β-CD) was studied. The methods of obtaining amlodipine and the physical and chemical properties of the inclusion complexes using the two cyclodextrins was investigated separately. Solid inclusion complexes were obtained by three methods: kneading, coprecipitation, and lyophilization, at a molar ratio of 1:1. For comparison, a physical mixture in the same molar ratio was prepared. The aim of the complexation process was to i
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44

Tang, Ying, and Xian Ping Xia. "Improvement of the Hydrophilicity of Cu/LDPE Composite and its Influence on the Release of Cupric Ions." Materials Science Forum 745-746 (February 2013): 46–52. http://dx.doi.org/10.4028/www.scientific.net/msf.745-746.46.

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t is of great importance to improve the hydrophilicity of Cu/LDPE composite, a material for a new type of IUDs (Intrauterine Devices). The aim of the study is not only satisfying the biocompatibility of medical devices implanted in human bodies, but also improving the releasing rate of cupric ions. In this study, various hydrophilic materials (sodium chloride, anhydrous glucose and soluble starch) were added respectively, in order to improve the hydrophilicity of Cu/LDPE composite. The microstructure of Cu/LDPE composite was characterized, moreover, the influence of the addition of these hydro
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45

Guo, Baolin, Chao Wang, Xianghui Ma, et al. "Research on Impermeability of Underwater Non-Dispersible Concrete in Saline Soil." Materials 15, no. 22 (2022): 7915. http://dx.doi.org/10.3390/ma15227915.

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The permeability of different strength grades of submerged non-dispersible concrete with different granulated slag admixtures in a saline soil environment simulated by different erosion solutions was investigated. The variation patterns of the chloride ion diffusion coefficient and pore characteristics were tested using NEL and MIP. The microscopic morphology of the specimens in different erosion environments and with slag doping was observed using SEM. The results showed that the impermeability of concrete in sulfate and complex salt environments was significantly reduced. The resistance of c
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46

Biswas, Mukul, and Suprakas Sinha Ray. "Water-dispersible nanocomposites of polyaniline and montmorillonite." Journal of Applied Polymer Science 77, no. 13 (2000): 2948–56. http://dx.doi.org/10.1002/1097-4628(20000923)77:13<2948::aid-app18>3.0.co;2-f.

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47

Pan, Congjie, Qiaoqiao Wen, Longfei Ma, Xuezhen Qin, and Suxiang Feng. "Novel water-dispersible silicon nanoparticles as a fluorescent and colorimetric dual-mode probe for emodin detection." New Journal of Chemistry 45, no. 28 (2021): 12528–37. http://dx.doi.org/10.1039/d1nj01775f.

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48

Yan, Xiaohu, Guojun Liu, Matthias Haeussler, and Ben Zhong Tang. "Water-Dispersible Polymer/Pd/Ni Hybrid Magnetic Nanofibers." Chemistry of Materials 17, no. 24 (2005): 6053–59. http://dx.doi.org/10.1021/cm051548d.

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49

Xia, Hai-bing, Peishan Foo, and Jiabao Yi. "Water-Dispersible Spherically Hollow Clusters of Magnetic Nanoparticles." Chemistry of Materials 21, no. 12 (2009): 2442–51. http://dx.doi.org/10.1021/cm900268z.

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50

Ma, Yihan, Xiaoyan Zhang, Yinjia Cheng, Xiaosui Chen, Yong Li, and Aiqing Zhang. "Mussel-inspired preparation of C60 nanoparticles as photo-driven DNA cleavage reagents." New Journal of Chemistry 42, no. 22 (2018): 18102–8. http://dx.doi.org/10.1039/c8nj03970d.

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