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Behavior of metal alloys in the semisolid state. Metallurgical Transactions A, 1991, 22(5): 957–981",{"doi":184},"10.1007\u002FBF02661090",{"id":22,"text":186,"url":22,"identifiers":187},"Kang Y L, Mao W M, Hu Z Q. Semi-Solid Processing Theory and Technology of Metal Material. Beijing: Science Press of China, 2004, 5 (in Chinese)",{},{"id":22,"text":189,"url":22,"identifiers":190},"Zhang H H, Shao G J, Xu L P. Study on the property and process parameters of semi-solid die casting of A356 aluminum alloy. China Foundry, 2005, 54(2): 144–147 (in Chinese)",{},{"id":22,"text":192,"url":22,"identifiers":193},"Tian Z F, Yang B C, Xie L J, et al. Discussion of thixocasting processing of semi-solid metal. Foundry Technology, 2005, 26(1): 28–30 (in Chinese)",{},{"id":22,"text":195,"url":22,"identifiers":196},"Koke J, Modigell M. Flow behaviour of semi-solid metal alloys. Journal of Non-Newtonian Fluid Mechanics, 2003, 112(2–3): 141–160",{"doi":197},"10.1016\u002FS0377-0257(03)00080-6",{"id":22,"text":199,"url":22,"identifiers":200},"Yu Z T, Zhang H H, Shao G J, et al. The research status of the SSM processing technologies of aluminum alloy and the mechanical properties of the products. Metal Forming Technology, 2003, 21(4): 58–61 (in Chinese)",{},{"id":22,"text":202,"url":22,"identifiers":203},"Tan J B, Xing S H, Li L X. Transactions of Nonferrous Metals Society of China The Journal Nonferrous Metal of China, 2006, 16(4): 612–615 (in Chinese)",{},{"id":22,"text":205,"url":22,"identifiers":206},"Chen J Y, Fan Z. Modelling of rheological behaviour of semisolid metal slurry Part 1-theory. Materials Science and Technology, 2002, 18(3): 237–242 (in Chinese)",{"doi":207},"10.1179\u002F026708301225000662",{"id":22,"text":209,"url":22,"identifiers":210},"Lin X, Li T, Huang W D. 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Limassol, Cyprus, 2004, 473",{},{"id":22,"text":225,"url":22,"identifiers":226},"Kang C G, Seo P K, Kang S S. The effect of injection velocity on liquid segregation and mechanical properties in arm part fabricated by semi-solid die casting process. Journal of Materials Processing Technology, 2006, 176(1–3): 32–40",{"doi":227},"10.1016\u002Fj.jmatprotec.2006.02.002",{"id":22,"text":229,"url":22,"identifiers":230},"Cho W G, Kang C G. Mechanical properties and their microstructure evaluation in the thixoforming process of semi-solid aluminum alloys. 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Protein-protein interactions: structurally conserved residues distinguish between binding sites and exposed protein surfaces. Proceedings of National Academy of Sciences USA, 2003, 100(10): 5772–5777\nLinse S, Cabaleiro-Lago C, Xue W F, et al. Nucleation of protein fibrillation by nanoparticles. Proceedings of National Academy of Sciences USA, 2007, 104(21): 8691–8696\nMa B, Nussinov R. Simulations as analytical tools to understand protein aggregation and predict amyloid conformation. Current Opinion in Chemical Biology, 2006, 10(5): 445–452\nMa B, Nussinov R. Trp\u002FMet\u002FPhe hot spots in protein-protein interactions: potential targets in drug design. Current Topics in Medicinal Chemistry, 2007, 7(10): 999–1005\nMeng J, Song L, Xu H, et al. Effects of single-walled carbon nanotubes on the functions of plasma proteins and potentials in vascular prostheses. Nanomedicine, 2005, 1(2): 136–142\nZhao C, Ren J, Qu X. 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Single-walled carbon nanotubes: geno- and cytotoxic effects in lung fibroblast V79 cells. Journal of Toxicology and Environmental Health A, 2007, 70(24): 2071–2079\nSharma C S, Sarkar S, Periyakaruppan A, et al. Single-walled carbon nanotubes induces oxidative stress in rat lung epithelial cells. Journal of Nanoscience and Nanotechnology, 2007, 7(7): 2466–2472\nZhu L, Chang D W, Dai L, et al. DNA damage induced by multiwalled carbon nanotubes in mouse embryonic stem cells. Nano Letters, 2007, 7(12): 3592–3597",{"EN":243},"We reviewed and examined recent progresses related to the nanochemistry and nanobiology of signal-walled carbon nanotubes (SWCNTs), focusing on the diameters of SWCNTs and how the diameters affect the interactions of SWCNT with protein and DNA, which underlay more complex biological responses. The diameters of SWCNTs are closely related to the electronic structure and surface chemistry of SWCNTs, and subsequently affect the interaction of SWCNTs with membrane, protein, and DNA. The surfaces of SWCNT with smaller diameters are more polar, and these with large diameters are more hydrophobic. The preference of SWCNT to interact with Trp\u002FPhe\u002FMet residues indicates it is possible that SWCNT may interfere with normal protein-protein interactions. SWCNT-DNA interactions often change DNA conformation. Besides the promising future of using SWCNTs as delivering nanomaterial, thermal therapy, and other biological applications, we should thoroughly examine the possible effects of carbon nanotube on interrupting normal protein-protein interaction network and other genetic effects at the cellular level.",{"EN":245},"Diameters of single-walled carbon nanotubes (SWCNTs) and related nanochemistry and 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Amorphous Zr-Al-TM (TM=Co, Ni, Cu) alloys with significant supercooled liquid region of over 100 K. Materials Transactions, JIM, 1991, 32(11): 1005–1010",{"doi":478},"10.2320\u002Fmatertrans1989.32.1005",{"id":22,"text":480,"url":22,"identifiers":481},"Peker A, Johnson W L. A highly processable metallic glass: Zr41.2Ti13.8Cu12.5Ni10.0Be22.5. Applied Physics Letters, 1993, 63(17): 2342–2344",{"doi":482},"10.1063\u002F1.110520",{"id":22,"text":484,"url":22,"identifiers":485},"Eckert J, He G, Das J, et al. Nanostructured composites in multicomponent alloy systems. Materials Transactions, JIM, 2003, 44(10): 1999–2006",{"doi":486},"10.2320\u002Fmatertrans.44.1999",{"id":22,"text":488,"url":22,"identifiers":489},"Choi-Yim H, Johnson W L. Bulk metallic glass matrix composites. Applied Physics Letters, 1997, 71(26): 3808–3810",{"doi":490},"10.1063\u002F1.120512",{"id":22,"text":492,"url":22,"identifiers":493},"Conner R D, Dandliker R B, Johnson W L. Mechanical properties of tungsten and steel fiber reinforced Zr41.25Ti13.75Cu12.5Ni10Be22.5 metallic glass matrix composites. Acta Materialia, 1998, 46: 6089–6102",{"doi":494},"10.1016\u002FS1359-6454(98)00275-4",{"id":22,"text":496,"url":22,"identifiers":497},"Fan C, Li C F, Inoue A, et al. Deformation behavior of Zr-based bulk nanocrystalline amorphous alloys. Physical Review B, 2000, 61: R3761–R3763",{"doi":498},"10.1103\u002FPhysRevB.61.R3761",{"id":22,"text":500,"url":22,"identifiers":501},"Hays C C, Kim C P, Johnson W L. Microstructure controlled shear bands pattern formation and enhanced plasticity of bulk metallic glasses containing in situ formed ductile phase dendrite dispersion. Physical Review Letters, 2000, 84(13): 2901–2306",{"doi":502},"10.1103\u002FPhysRevLett.84.2901",{"id":22,"text":504,"url":22,"identifiers":505},"Szuecs F, Kim C P, Johnson W L. Mechanical Properties of Zr56.2Ti13.8Nb5.0Cu6.9Ni5.6Be12.5 ductile phase reinforced bulk metallic glass composite. Acta Materialia, 2001, 49: 1507–1513",{"doi":506},"10.1016\u002FS1359-6454(01)00068-4",{"id":22,"text":508,"url":22,"identifiers":509},"Kim C P. Ductile phase reinforced bulk metallic glass composites formed by chemical partitioning. Dissertation for the Doctoral Degree. Pasadena: California Institute of Technology, 2001",{},{"id":22,"text":511,"url":22,"identifiers":512},"Hufnagel T C, Fan C, Ott T R, et al. Controlling shear band behavior in metallic glasses through microstructural design. Intermetallics, 2002, 10(11–12): 1163–1166",{"doi":513},"10.1016\u002FS0966-9795(02)00157-7",{"id":22,"text":515,"url":22,"identifiers":516},"Eckert J, Kühn U, Mattern N, et al. Structural bulk metallic glasses with different length-scale of constituent phase. Intermetallics, 2002, 10(11–12): 1183–1190",{"doi":517},"10.1016\u002FS0966-9795(02)00133-4",{"id":22,"text":519,"url":22,"identifiers":520},"Lee M H, Lee J Y, Bae D H, et al. A development of Ni-based alloys with enhanced plasticity. 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Acta Materialia, 2003, 51(8): 2383–2395",{"doi":533},"10.1016\u002FS1359-6454(03)00045-4",{"id":535,"createTime":536,"updateTime":537,"relativeEntities":538,"slug":539,"properties":540,"entityType":60,"verifyStatus":61,"verifyTime":549,"verifyNote":62,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":35,"primaryUrl":550,"fullTextUrl":22,"authors":551,"publicationType":157,"publisherRelationship":632,"citationCount":22,"citationInfo":22,"publishDate":652,"publishYear":473,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":232},"87efa451-41c4-43ba-af4c-3db7caa7278c","2024-01-22T00:38:34.996+00:00","2025-02-16T23:25:19.165+00:00",[],"In-vivo-study-of-degradable-magnesium-and-magnesium-alloy-as-bone-implant",{"references":541,"abstract":543,"title":545,"doi":547},{"VOID":542},"Wang W. Plastic Surgery. Hangzhou: Zhejiang Science & Technology Press, 1999, 368–372 (in Chinese)\nWitte F, Kaese V, Haferkamp H, et al. In vivo corrosion of four magnesium alloys and the associated bone response. Biomaterials, 2005, 26(17): 3557–3563\nHuang J J, Yang K. Research on magnesium alloys for biomedical applications. Materials Review, 2006, 20(4): 67–69 (in Chinese)\nPu S Y. Implant Material of Metal and Its Corrosion. Beijing: Beijing University of Aeronautics & Astronautics Press, 1990, 40–41 (in Chinese)\nShikinami Y, Okuno M. Bioresorbable devices made of forged composites of hydroxyapatite (HA) particles and poly L-lactide (PLLA): Part I. Basic characteristics. Biomaterials, 1999, 20(9): 859–877\nThamaraiselvi T V, Rajeswari S. Biological evaluation of bioceramic materials—a review. Trends in Biomaterials & Artificial Organs, 2004, 18(1): 9–17\nRezwan K, Chen Q Z, Blaker J J, et al. Biodegradable and bioactive porous polymer\u002Finorganic composite scaffolds for bone tissue engineering. Biomaterials, 2006, 27(18): 3413–3431\nPark S D, Todo M, Arakawa K. Effects of isothermal crystallization on fracture toughness and crack growth behavior of poly (lactic acid). Journal of Materials Science, 2005, 40(4): 1055–1058\nChen C C, Chueh J Y, Tseng H, et al. Preparation and characterization of biodegradable PLA polymeric blends. Biomaterials, 2003, 24(7): 1167–1173\nBaghni I M, Wu Y S, Li J Q, et al. Mechanical properties and potential applications of magnesium alloys. Transactions of Nonferrous Metals Society of China, 2003, 13(6): 1253–1259\nHench L L. Bioactive materials: The potential for tissue regeneration. Journal of Biomedical Materials Research, 1998, 41(4): 511–518\nGe J J. Biological Degradable Polymer and Its Application. Beijing: Chemical Industry Press, 2002, 289–290 (in Chinese)\nShen L, Lin Y P, Wang Y J. Experimental Researches of Orthopaedics and Traumatology. Beijing: Beijing Science & Technology Press, 2005, 64–79 (in Chinese)\nZhang X L, Zeng B F. Internal fixation of bone plate and fracture healing. Journal of Clinical Orthopaedics, 1999, 2(3): 238–240\nFricain J C, Granja P L, Barbosa M A, et al. Cellulose phosphates as biomaterials. In vivo biocompatibility studies. Biomaterials, 2002, 23(4): 971–980\nHuang J J, Ren Y B, Zhang B C, et al. Study on biocompatibility of magnesium and its alloys. Rare Metal Materials and Engineering, 2007, 36: 1002–1005",{"EN":544},"In order to investigate the in vivo behavior of pure magnesium and AZ31B and the influence of mineralization induction ability, sample rods were implanted intramedullary into the femora of rabbits. After one and nine weeks, six animals from each group were sacrificed, respectively. Undecalcified cross-sections of implant were performed to observe bone-implant by scanning electron microscopy (SEM) and energy dispersive spectromicroscopy (EDS). The SEM\u002FEDS evaluation showed that there is a thin layer of bone around magnesium and its alloy after nine-week implantation. The results further showed that the aluminum-zinc containing magnesium alloys AZ31B provided a slower degradation rate in vivo than the pure magnesium. At the locations where magnesium was resorbed, the deposition of new bone was found. 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School of Chinese Academy of Sciences, Beijing, China",{},{"title":630},{"VI":631},"Jingjing Huang",{"url":550,"publisher":633,"properties":648},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":634,"slug":10,"properties":635,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":640,"manageAffiliations":641,"indexDatabases":642,"url":22,"thumbnailPath":22,"statistic":643,"gsStatistic":22,"type":38,"analyzePriority":22},[],{"issn":636,"eissn":637,"title":638,"url":639},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[],{"impactFactor":23,"impactFactorByYear":644,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":29,"totalPublicationByYear":645,"totalCitation":23,"totalCitationByYear":646,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":647,"hindexLast5Year":23,"hindex":23},{},{"2007":31,"2008":32,"2009":33,"2010":34,"2011":35},{},{},{"volume":649,"pages":650},{"VOID":466},{"VOID":651},"405-409","2007-10-01",{"id":654,"createTime":655,"updateTime":655,"relativeEntities":656,"slug":22,"properties":657,"entityType":60,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":89,"primaryUrl":666,"fullTextUrl":22,"authors":667,"publicationType":157,"publisherRelationship":707,"citationCount":22,"citationInfo":22,"publishDate":727,"publishYear":728,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":232},"77af5781-43c4-4280-be03-d1fbd4f1bebf","2023-12-26T23:16:46.985+00:00",[],{"references":658,"abstract":660,"title":662,"doi":664},{"VOID":659},"Li Y, Shimizu H. Improvement in toughness of poly(L-lactide) (PLLA) through reactive blending with acrylonitrile-butadienestyrene copolymer (ABS): Morphology and properties. European Polymer Journal, 2009, 45(3): 738–746\nLi X-G, Huang M-R. Thermal decomposition kinetics of thermotropic poly(oxybenzoate-co-oxynaphthoate) Vectra copolyester. Polymer Degradation and Stability, 1999, 64(1): 81–90\nLee J W, Jeong E D, Cho E J, et al. Surface-phase separation of PEO-containing biodegradable PLLA blends and block copolymers. Applied Surface Science, 2008, 255(5): 2360–2364\nXu H, Teng C, Yu M. Improvements of thermal property and crystallization behavior of PLLA based multiblock copolymer by forming stereocomplex with PDLA oligomer. Polymer, 2006, 47(11): 3922–3928\nMilicevic D, Trifunovic S, Galovic S, et al. Thermal and crystallization behaviour of gamma irradiated PLLA. Radiation Physics and Chemistry, 2007, 76(8’9): 1376–1380\nLoo J S C, Ooi C P, Boey F Y C. Degradation of poly(lactide-co-glycolide) (PLGA) and poly(L-lactide) (PLLA) by electron beam radiation. Biomaterials, 2005, 26(12): 1359–1367\nRenouf-Glauser A C, Rose J, Farrar D, et al. A degradation study of PLLA containing lauric acid. Biomaterials, 2005, 26(15): 2415–2422\nCam D, Hyon S H, Ikada Y. Degradation of high molecular weight poly(L-lactide) in alkaline medium. Biomaterials, 1995, 16(11): 833–843\nProikakis C S, Mamouzelos N J, Tarantili P A, et al. Swelling and hydrolytic degradation of poly(D,L-lactic acid) in aqueous solutions. Polymer Degradation and Stability, 2006, 91(3): 614–619\nTsuji H, Echizen Y, Nishimura Y. Photodegradation of biodegradable polyesters: A comprehensive study on poly(L-lactide) and poly(ε-caprolactone). Polymer Degradation and Stability, 2006, 91(5): 1128–1137\nChen J H, Li C R. Thermal Analysis and Its Application. Beijing: Science Press, 1985 (in Chinese)\nCoats AW, Redfern J P. Kinetic parameters from thermogravimetric data. Nature, 1964, 201: 68–69\nOzawa T. A new method of analyzing thermogravimetric data. Bulletin of the Chemical Society of Japan, 1965, 38: 1881–1886\nNam J-D, Seferis J C. Generalized composite degradation kinetics for polymeric systems under isothermal and nonisothermal conditions. Journal of Polymer Science Part B: Polymer Physics, 1992, 30(5): 455–463",{"EN":661},"The non-isothermal and isothermal degradation behaviors and kinetics of poly(L-lactide) (PLLA) were studied by using thermogravimetry analysis (TGA) in nitrogen and air atmosphere, respectively. At lower heating rate ((5–10)°C\u002Fmin), PLLA starts to decompose in air at lower temperature than those in nitrogen atmosphere; however, at higher heating rate ((20–40)°C\u002Fmin), the starting decomposition temperature in air are similar to those in nitrogen atmosphere, not only showing that PLLA has better thermal stability in nitrogen than in air atmosphere, but also suggesting that the faster heating rate will decrease the decomposition of PLLA in thermal processing. Whether in air or in nitrogen atmosphere, the decomposition of PLLA has only one-stage degradation with a first-order decomposed reaction, suggesting that the molecular chains of PLLA have the similar decomposed kinetics. The average apparent activation energy of nonisothermal thermal degradation (Ē\n                        non) calculated by Ozawa theory are 231.7 kJ·mol−1 in air and 181.6 kJ·mol−1 in nitrogen; while the average apparent activation energy of isothermal degradation (Ē\n                        iso) calculated by Flynn method are 144.0 kJ·mol−1 in air and 129.2 kJ·mol−1 in nitrogen, also suggesting that PLLA is easier to decompose in air than in nitrogen. Moreover, the decomposed products of PLLA are also investigated by using thermogravimetry-differential scanning calorimetry-mass spectrometry (TGDSC-MS). In air atmosphere the volatilization products are more complex than those in nitrogen because the oxidation reaction occurring produces some oxides groups.",{"EN":663},"Thermal degradation behavior and kinetic analysis of poly(L-lactide) in nitrogen and air atmosphere",{"VOID":665},"10.1007\u002Fs11706-010-0008-1","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11706-010-0008-1",[668,683,695],{"id":669,"sortIndex":35,"researcher":22,"roles":670,"affiliations":671,"properties":680},"65582bf2-f78f-4ae4-9896-3e7954f609f3",[253],[672],{"id":22,"sortIndex":23,"affiliation":673,"properties":22},{"id":674,"createTime":675,"updateTime":675,"relativeEntities":676,"slug":22,"properties":677,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"1414be53-6af6-492a-ba1b-377e092ac71a","2023-12-26T23:16:46.993+00:00",[],{"title":678},{"VI":679},"Key Laboratory of Medicinal Chemistry and Molecular Diagnosis (Ministry of Education), College of Chemistry and Environmental Science, Hebei University, Baoding, China",{"title":681},{"VI":682},"Xin Li",{"id":684,"sortIndex":23,"researcher":22,"roles":685,"affiliations":686,"properties":692},"2ad521db-5b91-4563-aea3-d6060b2049f0",[253],[687],{"id":22,"sortIndex":23,"affiliation":688,"properties":22},{"id":674,"createTime":675,"updateTime":675,"relativeEntities":689,"slug":22,"properties":690,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":691},{"VI":679},{"title":693},{"VI":694},"Ming-Tao Run",{"id":696,"sortIndex":89,"researcher":22,"roles":697,"affiliations":698,"properties":704},"c1865904-7137-4208-9eaf-08dfbfe6bba0",[253],[699],{"id":22,"sortIndex":23,"affiliation":700,"properties":22},{"id":674,"createTime":675,"updateTime":675,"relativeEntities":701,"slug":22,"properties":702,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":703},{"VI":679},{"title":705},{"VI":706},"Chen-Guang Yao",{"url":666,"publisher":708,"properties":723},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":709,"slug":10,"properties":710,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":715,"manageAffiliations":716,"indexDatabases":717,"url":22,"thumbnailPath":22,"statistic":718,"gsStatistic":22,"type":38,"analyzePriority":22},[],{"issn":711,"eissn":712,"title":713,"url":714},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[],{"impactFactor":23,"impactFactorByYear":719,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":29,"totalPublicationByYear":720,"totalCitation":23,"totalCitationByYear":721,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":722,"hindexLast5Year":23,"hindex":23},{},{"2007":31,"2008":32,"2009":33,"2010":34,"2011":35},{},{},{"volume":724,"pages":725},{"VOID":350},{"VOID":726},"78-83","2010-01-19",2010,{"id":730,"createTime":731,"updateTime":732,"relativeEntities":733,"slug":734,"properties":735,"entityType":60,"verifyStatus":61,"verifyTime":732,"verifyNote":62,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":744,"fullTextUrl":22,"authors":745,"publicationType":157,"publisherRelationship":804,"citationCount":22,"citationInfo":22,"publishDate":652,"publishYear":473,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":232},"eb95ab49-bcce-404e-9d40-4f6efc7f380b","2023-12-14T02:15:20.646+00:00","2025-01-17T23:05:03.914+00:00",[],"Swelling-behaviors-tensile-properties-and-thermodynamic-interactions-in-APS-HEMA-copolymeric-hydrogels",{"references":736,"abstract":738,"title":740,"doi":742},{"VOID":737},"Dai H J, Chen Q, Qin H L. A temperature-responsive copolymer hydrogel in controlled drug delivery. Macromolecules, 2006, 39(19): 6584–6589\nHennink W E, van Nostrum C F. Novel crosslinking methods to design hydrogels. Advanced Drug Delivery Reviews, 2002, 54(1): 13–36\nTsukeshiba H, Huang M, Na Y H, et al. Effect of polymer entanglement on the toughening of double network hydrogels. The Journal of Physical Chemistry B, 2005, 109(34): 16304–16309\nWang J Q, Wu W H. Swelling behaviors, tensile properties and thermodynamic studies of water sorption of 2-hydroxyethyl methacrylate\u002Fepoxy methacrylate copolymeric hydrogels. European Polymer Journal, 2005, 41(5): 1143–1151\nFriends G, Künzler J, McGee J, et al. Hydrogels based on copolymers of N-(2-hydroxyethyl) methacrylamide, 2-hydroxyethyl methacrylate, and 4-t-butyl-2-hydroxycyclohexyl methacrylate. Journal of Applied Polymer Science, 1993, 49(11): 1869–1876\nJarvie A W P, Lloyd M C, Pourcain C B St. Novel hydrophilic cyclic monomers in hydrogel synthesis. Biomaterials, 1998, 19(21): 1957–1961\nClayton A B, Chirila T V, Lou X. Hydrophilic sponges based on 2-hydroxyethyl methacrylate. V. Effect of crosslinking agent reactivity on mechanical properties. Polymer International, 1997, 44(2): 201–207\nBarnes A, Corkhill P H, Tighe B J. Synthetic hydrogels: 3. Hydroxyalkyl acrylate and methacrylate copolymers: Surface and mechanical properties. Polymer, 1988, 29(12): 2191–2202.\nAbbasi F, Mirzadeh H, Katbab A A. Sequential interpenetrating polymer networks of poly(2-hydroxyethyl methacrylate) and polydimethylsiloxane. Journal of Applied Polymer Science, 2002, 85(9): 1825–1831\nLou X, Vijayasekaran S, Chirila T V, et al. Synthesis, physical characterization, and biological performance of sequential homointerpenetrating polymer network sponges based on poly(2-hydroxyethyl methacrylate). Journal of Biomedical Materials Research, 1999, 47(3): 404–411\nYoung C D, Wu J R, Tsou T L. High-strength, ultra-thin and fiber-reinforced pHEMA artificial skin. Biomaterials, 1998, 19(19): 1745–1752\nDavis T P, Huglin M B. Effect of composition on properties of copolymeric N-vinyl-2-pyrrolidone\u002Fmethyl methacrylate hydrogels and organogels. Polymer, 1990, 31(3): 513–519\nPeppas N A, Merrill E W. Hydrogels as swollen elastic network. Journal of Applied Polymer Science, 1977, 21(7): 1763–1770\nPeppas N A, Moynihan H J, Lucht L M. The structure of highly crosslinked poly (2-hydroxyethyl methacrylate) hydrogels. Journal of Biomedical Materials Research, 1985, 19(4): 397–411\nHuglin M B, Rehab M M A M, Zakaria M B. Thermodynamic interactions in copolymeric hydrogels. Macromolecules, 1986, 19(12): 2986–2991",{"EN":739},"A series of hydrogels was synthesized from hydrophobic allyl phenyl sulfone (APS) and hydrophilic 2-hydroxyethyl methacrylate (HEMA) by bulk free radical copolymerization. The effects of APS content and temperature were studied on network parameters such as effective crosslink density (v\n                e), molar mass between crosslinks (M\n                c) and polymer-water interaction parameter (x) of hydrogels. The increase in APS content was shown to enhance hydrophobic bonding within hydrogel, leading to the decrease in equilibrium water content (EWC) and the increase in volume fraction of polymer in hydrogel (ϕ\n                2), tensile strength and Young’s modulus. At the same time, the increases in v\n                e and x and the decrease in M\n                c were also observed. When the temperature is increased from 273 to 343 K, the hydrogel A\u002FH3 undergoes decreasing in EWC and increasing in ϕ\n                2 and x values. The thermody namic analysis indicated that the swelling process is an exothermic process.",{"EN":741},"Swelling behaviors, tensile properties and thermodynamic interactions in APS\u002FHEMA copolymeric hydrogels",{"VOID":743},"10.1007\u002Fs11706-007-0078-x","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11706-007-0078-x",[746,763,780,792],{"id":747,"sortIndex":89,"researcher":22,"roles":748,"affiliations":749,"properties":760},"9f673a1e-352e-44b2-967b-a2160bceee3a",[253],[750],{"id":22,"sortIndex":23,"affiliation":751,"properties":22},{"id":752,"createTime":753,"updateTime":754,"relativeEntities":755,"slug":756,"properties":757,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"184176f8-b8c7-4da8-af2a-07778be1fed2","2023-12-14T02:14:49.757+00:00","2025-02-07T09:43:05.575+00:00",[],"School-of-Materials-Science-and-Engineering-Beijing-Institute-of-Technology-Beijing-China",{"title":758},{"VI":759},"School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, China",{"title":761},{"VI":762},"Jianquan Wang",{"id":764,"sortIndex":144,"researcher":22,"roles":765,"affiliations":766,"properties":777},"e7f37bc6-c3c5-413e-99f4-c5e921b59686",[253],[767],{"id":22,"sortIndex":23,"affiliation":768,"properties":22},{"id":769,"createTime":770,"updateTime":771,"relativeEntities":772,"slug":773,"properties":774,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"00b22e09-b5b9-4789-8b03-711a1e64519f","2023-12-14T02:15:20.697+00:00","2025-06-11T14:11:24.990+00:00",[],"Beijing-Yanshan-Petrochemical-Co-Ltd-China-SINOPEC-Beijing-China",{"title":775},{"VI":776},"Beijing Yanshan Petrochemical Co., Ltd, China SINOPEC, Beijing, China",{"title":778},{"VI":779},"Xin Jin",{"id":781,"sortIndex":35,"researcher":22,"roles":782,"affiliations":783,"properties":789},"448e7ef1-a6db-43d7-8299-1c0af1cb2235",[253],[784],{"id":22,"sortIndex":23,"affiliation":785,"properties":22},{"id":752,"createTime":753,"updateTime":754,"relativeEntities":786,"slug":756,"properties":787,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":788},{"VI":759},{"title":790},{"VI":791},"Wenhui Wu",{"id":793,"sortIndex":23,"researcher":22,"roles":794,"affiliations":795,"properties":801},"15613cb0-3f97-4c16-a787-cf293bb2a1cb",[253],[796],{"id":22,"sortIndex":23,"affiliation":797,"properties":22},{"id":752,"createTime":753,"updateTime":754,"relativeEntities":798,"slug":756,"properties":799,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":800},{"VI":759},{"title":802},{"VI":803},"Zhihui Lin",{"url":744,"publisher":805,"properties":820},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":806,"slug":10,"properties":807,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":812,"manageAffiliations":813,"indexDatabases":814,"url":22,"thumbnailPath":22,"statistic":815,"gsStatistic":22,"type":38,"analyzePriority":22},[],{"issn":808,"eissn":809,"title":810,"url":811},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[],{"impactFactor":23,"impactFactorByYear":816,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":29,"totalPublicationByYear":817,"totalCitation":23,"totalCitationByYear":818,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":819,"hindexLast5Year":23,"hindex":23},{},{"2007":31,"2008":32,"2009":33,"2010":34,"2011":35},{},{},{"volume":821,"pages":822},{"VOID":466},{"VOID":823},"427-431",{"id":825,"createTime":826,"updateTime":827,"relativeEntities":828,"slug":829,"properties":830,"entityType":60,"verifyStatus":61,"verifyTime":827,"verifyNote":62,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":839,"fullTextUrl":22,"authors":840,"publicationType":157,"publisherRelationship":880,"citationCount":22,"citationInfo":22,"publishDate":900,"publishYear":728,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":232},"12354f99-50b3-4ca9-8675-05cf61e41861","2023-12-13T18:23:02.336+00:00","2024-12-10T23:00:55.091+00:00",[],"The-effect-of-HfO2-second-phase-in-Fe-films-upon-ion-irradiation",{"references":831,"abstract":833,"title":835,"doi":837},{"VOID":832},"Myung H S, Lee H M, Shaginyan L R, et al. Microstructure and mechanical properties of Cu doped TiN superhard nanocomposite coatings. Surface and Coatings Technology, 2003, 163–164: 591–596\nBiersack J P, Ziegler J F. Refined universal potentials in atomic collisions. Nuclear Instruments and Methods in Physics Research, 1982, 194(1–3): 93–100\nPareige P, Miller M K, Stoller R E, et al. Stability of nanometer-sized oxide clusters in mechanically-alloyed steel under ion-induced displacement cascade damage conditions. Journal of Nuclear Materials, 2007, 360(2): 136–142\nGan J, Allen T R, Birtcher R C, et al. Radiation effects on the microstructure of a 9Cr-ODS alloy. JOM, 2008, 60(1): 24–28\nAllen T R, Gan J, Cole J I, et al. Radiation response of a 9 chromium oxide dispersion strengthened steel to heavy ion irradiation. Journal of Nuclear Materials, 2008, 375(1): 26–37\nPouchon M A, Chen J, Döbeli M, et al. Oxide dispersion strengthened steel irradiation with helium ions. Journal of Nuclear Materials, 2006, 352(1–3): 57–61\nHe Y P, Zhang Z Y, Zhao Y P. Optical and photocatalytic properties of oblique angle deposited TiO2 nanorod array. Journal of Vacuum Science and Technology B, 2008, 26(4): 1350–1358\nFujishima A, Zhang X T, Tryk D A. TiO2 photocatalysis and related surface phenomena. Surface Science Reports, 2008, 63(12): 515–582\nMurugesan S, Kuppusami P, Mohandas E. Rietveld X-ray diffraction analysis of nanostructured rutile films of titania prepared by pulsed laser deposition. Materials Research Bulletin, 2010, 45(1): 6–9\nZhou Q, Li Z C, Yang Y, et al. D. Arrays of aligned, single crystalline silver nanorods for trace amount detection. Journal of Physics D: Applied Physics, 2008, 41(15): 152007 (4 pages)\nNi J, Zhu Y, Zhou Q, et al. Morphology in-design deposition of HfO2 thin films. Journal of the American Ceramic Society, 2008, 91(10): 3458–3460\nRobbie K, Brett M J. Sculptured thin films and glancing angle deposition: Growth mechanics and applications. Journal of Vacuum Science and Technology A, 1997, 15(3): 1460–1465\nHarris K D, Brett M J, Smy T J, et al. Microchannel surface area enhancement using porous thin films. Journal of the Electrochemical Society, 2000, 147(5): 2002–2006\nLi Z C, Abe H, Sekimura N. Detection of point defects upon ion irradiation by means of precipitate coherency. Journal of Nuclear Materials, 2007, 362(1): 87–92",{"EN":834},"Ferrum of BCC crystal structure is a typical kind of matrix in structural alloy steels which could be strengthened by introducing some second phase. In the present study, BCC Fe thin films with hafnium oxide (HfO2) second phase have been synthesized in an electron beam evaporation system. Multi-layered and glancing angle deposition (GLAD) techniques were taken to form some HfO2 second phase in Fe films. Ion irradiation was conducted to investigate the irradiation resistance of the obtained samples with and without HfO2 second phase.",{"EN":836},"The effect of HfO2 second phase in Fe films upon ion irradiation",{"VOID":838},"10.1007\u002Fs11706-010-0033-0","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11706-010-0033-0",[841,856,868],{"id":842,"sortIndex":23,"researcher":22,"roles":843,"affiliations":844,"properties":853},"295b00aa-e111-4926-abd5-05d5f08cd5dd",[253],[845],{"id":22,"sortIndex":23,"affiliation":846,"properties":22},{"id":847,"createTime":848,"updateTime":848,"relativeEntities":849,"slug":22,"properties":850,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"aab4eaf0-64c6-4066-ab1e-f8107c37b3ea","2023-12-13T18:23:02.374+00:00",[],{"title":851},{"VI":852},"Advanced Materials Laboratory, Department of Materials Science and Engineering, Tsinghua University, Beijing, China",{"title":854},{"VI":855},"Na Zhang",{"id":857,"sortIndex":35,"researcher":22,"roles":858,"affiliations":859,"properties":865},"42be31b7-8945-4ee2-adb0-16156117fb53",[253],[860],{"id":22,"sortIndex":23,"affiliation":861,"properties":22},{"id":847,"createTime":848,"updateTime":848,"relativeEntities":862,"slug":22,"properties":863,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":864},{"VI":852},{"title":866},{"VI":867},"Zheng-Cao Li",{"id":869,"sortIndex":89,"researcher":22,"roles":870,"affiliations":871,"properties":877},"b812d766-80bc-4c3b-b54a-f6bd9f414e30",[253],[872],{"id":22,"sortIndex":23,"affiliation":873,"properties":22},{"id":847,"createTime":848,"updateTime":848,"relativeEntities":874,"slug":22,"properties":875,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":876},{"VI":852},{"title":878},{"VI":879},"Zheng-Jun Zhang",{"url":839,"publisher":881,"properties":896},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":882,"slug":10,"properties":883,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":888,"manageAffiliations":889,"indexDatabases":890,"url":22,"thumbnailPath":22,"statistic":891,"gsStatistic":22,"type":38,"analyzePriority":22},[],{"issn":884,"eissn":885,"title":886,"url":887},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[],{"impactFactor":23,"impactFactorByYear":892,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":29,"totalPublicationByYear":893,"totalCitation":23,"totalCitationByYear":894,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":895,"hindexLast5Year":23,"hindex":23},{},{"2007":31,"2008":32,"2009":33,"2010":34,"2011":35},{},{},{"volume":897,"pages":898},{"VOID":350},{"VOID":899},"193-196","2010-05-10",{"id":902,"createTime":903,"updateTime":904,"relativeEntities":905,"slug":906,"properties":907,"entityType":60,"verifyStatus":61,"verifyTime":904,"verifyNote":62,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":35,"primaryUrl":916,"fullTextUrl":22,"authors":917,"publicationType":157,"publisherRelationship":1007,"citationCount":22,"citationInfo":22,"publishDate":1028,"publishYear":177,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":232},"4e634a0e-e037-4786-b072-452ac08ec1dc","2024-01-30T08:16:15.347+00:00","2025-02-18T22:47:36.013+00:00",[],"Electron-beam-irradiated-HDPE-EVA-Mg-OH-2-composites-for-flame-retardant-electric-cables",{"references":908,"abstract":910,"title":912,"doi":914},{"VOID":909},"Mateev M, Karageorgiev S. The effect of electron beam irradiation and content of EVA upon the gel-forming processes in LDPE-EVA films. Radiation Physics and Chemistry, 1998, 51(2): 205–206\nZhu A, Cao X. The electron-beam irradiation cross-linking and modifying of high density polyethylene insulation. In: The 6th International Conference on Properties and Applications of Dielectric Materials, Xi’an, China, 2000\nGheysari D, Behjat A. The effect of high-energy electron beam irradiation and content of ATH upon mechanical and thermalproperties of EVA copolymer. European Polymer Journal, 2002, 38(6): 1087–1093\nLi Z Z, Qu B J. Effects of gamma irradiation on the properties of flame-retardant EVM\u002Fmagnesium hydroxide blends. Radiation Physics and Chemistry, 2004, 69(2): 137–141\nJipa S, Zaharescu T, Marcuta M, et al. Synergistic effects of EB irradiation and heat on EVA electrical insulators. Nuclear Instruments & Methods in Physics Research Section B-Beam Interactions with Materials and Atoms, 2005, 236: 567–574\nLu H D, Hu Y, Xiao J F, et al. The influence of irradiation on morphology evolution and flammability properties of maleated polyethylene\u002Fclay nanocomposite. Materials Letters, 2005, 59(6): 648–651\nJiao CM, Wang Z Z, Chen X L, et al. Irradiation crosslinking and halogen-free flame retardation of EVA using hydrotalcite and red phosphorus. Radiation Physics and Chemistry, 2006, 75(5): 557–563\nBasfar A A. Flammability of radiation cross-linked low density polyethylene as an insulating material for wire and cable. Radiation Physics and Chemistry, 2002, 63(3–6): 505–508\nBasfar A A. Flame retardancy of radiation cross-linked poly (vinyl chloride) (PVC) used as an insulating material for wire and cable. Polymer Degradation and Stability, 2002, 77(2): 221–226\nDadbin S, Frounchi M, Saeid M H, et al. Molecular structure and physical properties of E-beam crosslinked low-density polyethylene for wire and cable insulation applications. Journal of Applied Polymer Science, 2002, 86(8): 1959–1969\nMachi S. New trends of radiation processing applications. Radiation Physics and Chemistry 1996, 47(3): 333–336\nGheysari D, Behjat A, Haji-Saeid M. The effect of high-energy electron beam on mechanical and thermal properties of LDPE and HDPE. European Polymer Journal, 2001, 37(2): 295–302\nSharif J, Aziz S H S A, Hashim K. Radiation effects on LDPE\u002FEVA blends. Radiation Physics and Chemistry, 2000, 58(2): 191–195",{"EN":911},"The mechanical properties and flammability of high-density polyethylene (HDPE)\u002Fethylene vinyl acetate (EVA) mixed with various amounts of magnesium hydroxide (Mg(OH)2) as the filler in composites, irradiated with electron beam at an irradiation dose of 150 kGy, have been studied. It is found that high-energy electron beam irradiation has significant effects on the mechanical properties of the HDPE\u002FEVA\u002FMg(OH)2 composites. The tensile strength and elastic modulus increased greater than in the unirradiated ones. Meanwhile, with increasing the content of Mg(OH)2 in the composites, the limiting oxygen index (LOI) value increased sharply. The microstructure of the caves of the unirradiated HDPE\u002FEVA\u002FMg(OH)2 composites show poor interface of composites compared with the irradiated ones, as observed in SEM micrographs.",{"EN":913},"Electron beam irradiated HDPE\u002FEVA\u002FMg(OH)2 composites for flame-retardant electric cables",{"VOID":915},"10.1007\u002Fs11706-008-0064-y","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11706-008-0064-y",[918,933,945,957,969,985],{"id":919,"sortIndex":144,"researcher":22,"roles":920,"affiliations":921,"properties":930},"52822f38-d04a-47d7-acde-db57c019d726",[253],[922],{"id":22,"sortIndex":23,"affiliation":923,"properties":22},{"id":924,"createTime":925,"updateTime":925,"relativeEntities":926,"slug":22,"properties":927,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"964e84a3-a309-4aa4-8d3a-632f144a3470","2024-01-30T08:16:15.412+00:00",[],{"title":928},{"VI":929},"Institute of Polymer Composites, Zhejiang University\u002FKey Laboratory of Macromolecular Synthesis and Functionalization, Hangzhou, China",{"title":931},{"VI":932},"Li-fang Tong",{"id":934,"sortIndex":35,"researcher":22,"roles":935,"affiliations":936,"properties":942},"fccdfdc9-0372-4090-bc14-73821400b81c",[253],[937],{"id":22,"sortIndex":23,"affiliation":938,"properties":22},{"id":924,"createTime":925,"updateTime":925,"relativeEntities":939,"slug":22,"properties":940,"entityType":81,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":941},{"VI":929},{"title":943},{"VI":944},"Nabil A. 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A new parenteral emulsion for the administration of taxol. Pharmaceutical Research, 1987, 4(2): 162–165\nDordunoo S K, Jackson J K, Arsenault L A, et al. Taxol encapsulation in poly(ɛ-caprolactone) microspheres. Cancer Chemotherapy and Pharmacology, 1995, 36(4): 279–282\nDordunoo S K, Oktaba A M C, Hunter W, et al. Release of taxol from poly(ɛ-caprolactone) pastes: effect of water-soluble additives. Journal of Controlled Release, 1997, 44(1): 87–94\nDeng L D, Dong A J, Zhang Y T, et al. Paclitaxel-loaded amphiphilic copolymer nanoparticles. Journal of Tianjin University, 2004, 37(1): 15 (in Chinese)\nZhang J Q, Zhang Z R. Preparation of paclitaxel entrapped with magnetic non-ionic surfactant vesicles and its quality evaluation. Chinese Journal of Hospital Pharmacy, 2001, 21(8): 454–455 (in Chinese)\nQiu X H, Chao H, Zhou Y Q. The modification of taxol with improving water solubility. Chemical Research in Chinese Universities, 1999, 20(7): 1073\nYuan Y J. Anti-cancer New Drug Paclitaxel and Polyene Paclitaxel. Beijing: Chemical Industry Press, 2002, 164 (in Chinese)\nCui S, Shen X D, Lin B L. Preparation of water-based stabilized dispersion of nanon Fe3O4 used in target-orientation drug. Fine Chemicals, 2006, 23(9): 859–862 (in Chinese)\nYang N R. Testing Method of Inorganic Non-metal Material. Wuhan: Wuhan University of Technology Press, 1993, 145 (in Chinese)\nLin B L, Shen X D, Cui S, et al. Synthesis and characterization of magnetic nanoparticle to control releasing of adriamycin. Chinese Journal of Hospital Pharmacy, 2005, 25(5): 424–426 (in Chinese)\nShi S Y, Zhong S A, Zhou C S. Mensuration of paclitaxel content in the middle of Hunan yew by high efficiency liquid chromatography. Chinese Journal of Pharmaceutical Analysis, 2004, 24(5): 552 (in Chinese)\nWang P K, Chen D T, Feng X S, et al. An experimental study on the targeting distribution of magnetic microspheres-carrier. Chinese Journal of Physical Therapy, 1995, 18(2): 68 (in Chinese)\nZhang L D, Mu J M. Nano-materiasl and Nano-structures. Beijing: Science Press, 2001, 94 (in Chinese)",{"EN":1039},"The objective of this paper was to prepare paclitaxel-loaded microspheres, a kind of target-orientation anticancer drug. The paclitaxel-loaded microspheres were prepared with magnetic Fe3O4 nanoparticles and taxol. The morphology was characterized by scanning electron microscopy (SEM), and the average size and the size distribution were determined by a laser-size distributing instrument. High performance liquid chromatography (HPLC) was used to measure the paxlitaxel content. Experimental results indicated that the effective drug loading and the entrapment ratio of paclitaxel-loaded microspheres were 1.83% and 92.62%, respectively.",{"EN":1041},"Preparation of paclitaxel-loaded microspheres with magnetic 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