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Polym. Lett. 2(4), 294–301 (2008)\nM.K. Mishra, S. Moharana, B. Dash, R.N. Mahaling, Effect of poly (ethylene glycol) on the dielectric properties of poly (vinylidene fluoride)\u002FBiFeO3\u002Fpoly (ethylene glycol) composite films for electronic applications. Polym. Sci. Ser. A 59(1), 133–142 (2017)",{"EN":196},"",{"EN":198},"The synthesis of ternary nanocomposites with tailored properties based on polymer blends is gaining popularity all over the world. Our work introduces a novel ternary nanocomposite of poly (ethylmethacrylate)\u002Fpolystyrene\u002Fsilver nanoparticles (PEMA\u002FPS\u002FAg NPs). Silver nanoparticles were synthesized via laser ablation route at different laser times (5, 10, 15, 20, and 30 min) and scattered in PEMA\u002FPS blend in one step. The prepared Ag NPs@PEMA\u002FPS films were investigated via FT-IR, XRD, SEM, and UV-Vis. techniques. The dielectric characterization and electrical conductivity of the prepared have been performed. FT-IR results approve the particular interaction in NPs@PEMA\u002FPS at various laser ablation times. XRD results showed an increase in amorphousity, which encouraged the interaction between Ag NPs and the PEMA\u002FPS blend. SEM photo reveals that the scattering of Ag NPs has been raised on the surfaces of the samples as the concentration of Ag NPs increased in the PEMA\u002FPS matrix. The optical properties of the synthesized samples obtain a distinct absorption peak at 432 nm that has been attributed to Ag NPs surface plasmon resonance (SPR). The energy gap of prepared samples decreased as the concentration of Ag NPs in PEMA\u002FPS increased, decreasing from 3.64 to 2.71 eV for the direct transition and from 1.68 to 0.42 eV for the indirect transition. The dielectric constant, dielectric loss, and A.C electrical conductivity of Ag NPs@PEMA\u002FPS films increased with increasing in Ag NPs content. The PEMA\u002FPS\u002FAg NPs at laser ablation time 30 min achieves a maximum ionic conductivity of ~ 7.86 × 10–5 S\u002Fcm. The results confirm that NPs@PEMA\u002FPS films nanocomposites have excellent optical and electronic properties, which may encourage the application of these composites in different electric and optoelectric utilization.",{"EN":200},"Enhanced Electrical Conductivity and Dielectric Performance of Ternary Nanocomposite Film of PEMA\u002FPS\u002FSilver NPs Synthesized by Laser Ablation",{"VOID":202},"10.1007\u002Fs10904-022-02286-0","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10904-022-02286-0",[208,225,242,260,285,306,321,338],{"id":209,"sortIndex":210,"researcher":20,"roles":211,"affiliations":213,"properties":222},"3e0b03c9-0935-4397-a634-113cc68b8b7b",1,[212],"AUTHOR",[214],{"id":20,"sortIndex":21,"affiliation":215,"properties":20},{"id":216,"createTime":217,"updateTime":217,"relativeEntities":218,"slug":20,"properties":219,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"243e0dec-4475-427f-973f-151312df3e12","2024-01-12T20:02:34.260+00:00",[],{"title":220},{"VI":221},"Department of Clinical Laboratory Sciences, College of Applied Medical Sciences, Taif University, Taif, Saudi Arabia",{"title":223},{"VI":224},"Ahmad El Askary",{"id":226,"sortIndex":227,"researcher":20,"roles":228,"affiliations":229,"properties":239},"c6ce47d1-e9bf-4748-91c6-c63367c00fb6",4,[212],[230],{"id":20,"sortIndex":21,"affiliation":231,"properties":20},{"id":232,"createTime":233,"updateTime":233,"relativeEntities":234,"slug":235,"properties":236,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"e1607788-17dd-432a-acbe-5d3e789e91da","2024-04-08T18:37:22.883+00:00",[],"Department-of-Chemistry-College-of-Science-and-Humanities-Prince-Sattam-Bin-Abdulaziz-University-Alkharj-Saudi-Arabia",{"title":237},{"VI":238},"Department of Chemistry, College of Science and Humanities, Prince Sattam Bin Abdulaziz University, Alkharj, Saudi Arabia",{"title":240},{"VI":241},"Moustapha Eid Moustapha",{"id":243,"sortIndex":244,"researcher":20,"roles":245,"affiliations":246,"properties":257},"c132c320-d576-4f05-8e6d-bc76c3833864",2,[212],[247],{"id":20,"sortIndex":21,"affiliation":248,"properties":20},{"id":249,"createTime":250,"updateTime":251,"relativeEntities":252,"slug":253,"properties":254,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"5fe3be3b-8692-412c-ade9-517334547cde","2023-12-10T02:00:28.881+00:00","2024-07-25T03:38:49.128+00:00",[],"Chemistry-Department-Faculty-of-Science-King-Khalid-University-Abha-Saudi-Arabia",{"title":255},{"VI":256},"Chemistry Department, Faculty of Science, King Khalid University, Abha, Saudi Arabia",{"title":258},{"VI":259},"Nasser S. 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Baran, V.T. Yilmaz, Coord. Chem. Rev. 250, 1980 (2006)\nA. Santoro, A.D. Mighell, C.W. Reimann, Acta Crystallogr. B26, 979 (1970)\nG.W. Inman Jr., W.E. Hatfield, Inorg. Chem. 11, 3085 (1972)\nH.W. Richardson, W.E. Hatfield, J. Am. Chem. Soc. 98, 835 (1976)\nJ. Darriet, M.S. Haddad, E.N. Duesler, D.N. Hendrickson, Inorg. Chem. 18, 2679 (1979)\nH.W. Richardson, J.R. Wasson, W.E. Hatfield, Inorg. Chem. 16, 484 (1977)\nE. Coronado, M. Drillon, D. Beltran, Inorg. Chim. Acta 82, 13 (1984)\nJ.S. Haynes, S.J. Rettig, J.R. Sams, R.C. Thompson, J. Trotter, Can. J. Chem. 65, 420 (1987)\nJ.S. Haynes, S.J. Rettig, J.R. Sams, J. Trotter, R.C. Thompson, Inorg. Chem. 27, 1237 (1988)\nT. Fetzer, A. Lentz, T. Debaerdemaeker, Z. Naturforsch. 44B, 553 (1989)\nL. Carlucci, G. Liani, D.M. Proserpie, A. Sironi, J. Am. Chem. Soc. 117, 4562 (1995)\nL. Carlucci, G. Ciani, D.M. Proserpio, A. Sironi, Angew. Chem. Int. Ed. Engl. 34, 1895 (1995)\nO.M. Yaghi, H. Li, T.L. Groy, Inorg. Chem. 36, 4292 (1997)\nJ.L. Manson, C.D. Incarvito, A.L. Rheingold, J.S. Miller, J. Chem. Soc. Dalton Trans. 3705 (1998).\nP. Jensen, S.R. Batten, G. Fallon, D.C.R. Hockless, B. Moubaraki, K.S. Murray, R. Robson, J. Solid State Chem. 145, 387 (1999)\nA.J. Blake, N.R. Chanpress, A.N. Khlobystov, S. Parsons, M. Schroder, Angew. Chem. Int. Ed. Engl. 39, 2317 (2000)\nS. Amaral, W.E. Jensen, C.P. Lande, M.M. Turnbull, F.M. Woodward, Polyhedron 20, 1317 (2001)\nP. Jensen, S.R. Batten, B. Moubaraki, K.S. Murray, J. Solid State Chem. 159, 352 (2001)\nJ.L. Manson, Q.-Z. Huang, J.W. Lynn, H.-J. Koo, M.-H. Whangbo, R. Bateman, T. Otsuko, N.A. Wada, J.S. Miller, J. Am. Chem. Soc. 123, 162 (2001)\nC.M. Brown, J.L. Manson, J. Am. Chem. Soc. 124, 12600 (2002)\nZ. Haider, K.M.A. Malik, K.J. Ahmed, Inorg. Synth. 23, 47 (1985)\nG.M. Sheldrick, SHELX-97. Programs for Crystal Structure Analysis (University of Göttingen, Germany, 1997)\nP. Naumov, G. Jovanovski, J. Mol. Struct. 563\u002F564, 335 (2001)\nT. Otieno, S.J. Rettig, R.C. 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Anal. 53, 843 (1998)",{"EN":472},"The reaction of [Cu(sac)2(H2O)4] · 2H2O with 2-methylpyrazine (mpyz) leads two complexes, concomitant crystallization of a mononuclear complex [Cu(sac)2(mpyz)(H2O)2] (1) and a polymeric complex [Cu(sac)2(μ-mpyz)]n (2). Both complexes have been characterized by elemental analyses, magnetic measurements, FT-IR and ESR, TG-DTA and single-crystal X-ray diffraction analyses. Single-crystal X-ray analyses show that complex 1 consists of discrete molecules in which the copper(II) ions exhibits a square-pyramidal coordination geometry. The individual molecules of 1 are connected into a hydrogen-bonded chain structure, which is further assembled to form a three-dimensional network by π–π stacking interactions. \nComplex 2 is an 1D coordination polymer in which copper(II) centers are bridged by the mpyz ligand. The chains are further assembled to form two-dimensional frameworks by π–π and C–H···π stacking interactions.",{"EN":474},"Concomitant Crystallization of Copper(II) Sachharinato Complexes with 2-methylpyrazine as a Monomer and an One-dimensional Polymer: Syntheses, Crystal Structures, Spectroscopic and Thermal Properties",{"VOID":476},"10.1007\u002Fs10904-008-9218-8","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10904-008-9218-8",[479,494,509],{"id":480,"sortIndex":21,"researcher":20,"roles":481,"affiliations":482,"properties":491},"ff4a76f8-dd5a-4713-9001-5258dc2b8510",[212],[483],{"id":20,"sortIndex":21,"affiliation":484,"properties":20},{"id":485,"createTime":486,"updateTime":486,"relativeEntities":487,"slug":20,"properties":488,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"1d651fee-99ff-4d9c-a35c-0595a32fe2c6","2023-12-27T08:53:38.847+00:00",[],{"title":489},{"VI":490},"Department of Chemistry, Faculty of Arts and Sciences, Uludag University, Gorukle, Turkey",{"title":492},{"VI":493},"Veysel T. Yilmaz",{"id":495,"sortIndex":244,"researcher":20,"roles":496,"affiliations":497,"properties":506},"08d8bb73-c145-44bf-82ff-d422372a4011",[212],[498],{"id":20,"sortIndex":21,"affiliation":499,"properties":20},{"id":500,"createTime":501,"updateTime":501,"relativeEntities":502,"slug":20,"properties":503,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"20d7ab6b-ea5e-4a08-a77a-d5a3e107a747","2023-12-28T11:15:59.958+00:00",[],{"title":504},{"VI":505},"Department of Physics, Faculty of Arts and Sciences, Ondokuz Mayıs University, Kurupelit, Turkey",{"title":507},{"VI":508},"Canan Kazak",{"id":510,"sortIndex":210,"researcher":20,"roles":511,"affiliations":512,"properties":522},"e3c59af7-d341-4ef1-a8ea-321fd84c34ca",[212],[513],{"id":20,"sortIndex":21,"affiliation":514,"properties":20},{"id":515,"createTime":516,"updateTime":516,"relativeEntities":517,"slug":518,"properties":519,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"75d67166-b68e-477e-b3e8-174ff6defea7","2023-11-29T03:31:15.520+00:00",[],"Department-of-Chemistry-Faculty-of-Arts-and-Sciences-Ondokuz-Mayis-University-Kurupelit-Turkey",{"title":520},{"VI":521},"Department of Chemistry, Faculty of Arts and Sciences, Ondokuz Mayis University, Kurupelit, Turkey",{"title":523},{"VI":524},"Evrim Senel",{"url":477,"publisher":526,"properties":554},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":527,"slug":10,"properties":528,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":532,"manageAffiliations":533,"indexDatabases":534,"url":20,"thumbnailPath":20,"statistic":549,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":529,"eissn":530,"title":531},{"VOID":13},{"VOID":15},{"EN":17},[],[],[535,542],{"id":83,"indexDatabase":536,"url":96,"indexYears":97,"academicFieldIds":541,"indexDatabaseRanking":101},{"id":85,"createTime":86,"updateTime":87,"relativeEntities":537,"label":538,"description":539,"key":93,"publicationTags":540,"standard":20},[],{"EN":90,"VI":90},{"EN":90,"VI":92},[95],[99,100],{"id":64,"indexDatabase":543,"url":79,"indexYears":20,"academicFieldIds":548,"indexDatabaseRanking":20},{"id":66,"createTime":67,"updateTime":68,"relativeEntities":544,"label":545,"description":546,"key":75,"publicationTags":547,"standard":20},[],{"EN":71,"VI":71},{"VI":73,"EN":74},[77,78],[81],{"impactFactor":21,"impactFactorByYear":550,"i10Index":115,"i10IndexLast5Year":116,"totalPublication":117,"totalPublicationByYear":551,"totalCitation":139,"totalCitationByYear":552,"totalCitationPerPublication":160,"totalCitationPerPublicationByYear":553,"hindexLast5Year":181,"hindex":181},{"2012":104,"2013":105,"2014":106,"2015":107,"2016":106,"2017":108,"2018":109,"2019":110,"2020":111,"2021":112,"2022":113,"2023":114},{"2005":119,"2006":120,"2007":121,"2008":122,"2009":123,"2010":124,"2011":125,"2012":126,"2013":127,"2014":128,"2015":129,"2016":130,"2017":131,"2018":132,"2019":133,"2020":134,"2021":135,"2022":136,"2023":137,"2024":138},{"2005":141,"2006":142,"2007":143,"2008":144,"2009":129,"2010":145,"2011":146,"2012":147,"2013":148,"2014":149,"2015":150,"2016":151,"2017":152,"2018":153,"2019":154,"2020":155,"2021":156,"2022":157,"2023":158,"2024":159},{"2005":162,"2006":163,"2007":164,"2008":165,"2009":166,"2010":167,"2011":168,"2012":169,"2013":170,"2014":171,"2015":163,"2016":172,"2017":173,"2018":174,"2019":175,"2020":176,"2021":177,"2022":178,"2023":179,"2024":180},{"volume":555,"pages":557},{"VOID":556},"18",{"VOID":558},"407-413","2008-06-13",2008,{"id":562,"createTime":563,"updateTime":564,"relativeEntities":565,"slug":566,"properties":567,"entityType":203,"verifyStatus":204,"verifyTime":564,"verifyNote":205,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":576,"fullTextUrl":20,"authors":577,"publicationType":362,"publisherRelationship":620,"citationCount":20,"citationInfo":20,"publishDate":654,"publishYear":655,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":394},"bcef41c8-ab6e-411b-9025-4243bdc4645d","2024-01-17T17:13:05.347+00:00","2024-12-26T23:59:13.137+00:00",[],"Synthesis-and-Electric-Modulus-Formalism-of-Novel-Metal-Phthalocyanine-Bridged-Polymers",{"references":568,"abstract":570,"title":572,"doi":574},{"VOID":569},"H.F. Moser, A.L. Thomas, Phthalocyanine compounds (Reinhold, New York, 1963)\nD. Woehrle, V. Schmidt, B. Schumann, A. Yamada, K. Shigehara, Ber. Bunsenges. Phys. Chem. 91, 975–981 (1987)\nC.S. Marvel, J.H. Rassweiler, J. Am. Chem. Soc. 80, 1197 (1958)\nN. Namba (ed.), Phthalocyanine-Chemistry and Functions (IPC, Tokyo, 1997)\nM. Ottmar, D. Hohnholz, A. Wedel, M. Hanack, Synth. Met. 105, 145–149 (1999)\nC. Boscornea, St. Tomas, L.G. Hinescu, C. Tarabasaanu-Mihaila, J. Mater. Process. Technol. 119, 344–347 (2001)\nA.W. Snow, J. R. Griffith In Encyclopaedia of Polymer Science and Engineering, Vol. 11, (Wiley and Sons, New York, 1988) pp. 212–225\nM.R. Willis, Mol. Cryst. Liq. Cryst. 171, 217–234 (1989)\nB. Neil, McKeown, Phthalocyanine Materials: Synthesis, Structure and Function (Cambridge University Press, Cambridge, 1998)\nW. Darwish, G. Turky, J. Inorg. Organomet. Polym. 24, 347–354 (2014)\nH.S. Nalwa (ed.), Handbook of Low and High Dielectric Constant Materials and their Application Vol. 1, Chapter 8; Vol. 2, Chapter 9 (Academic Press, San Diego, 1999)\nM. Guo, X. Yan, Y. Kwon, T. Hayakawa, M. Kakimoto, T. Goodson, J. Am. Chem. Soc. 128, 14820–14821 (2006)\nD. Woehrle, E. Preussner, Makromol. Chem. 186, 2189–2207 (1985). references cited therein\nD. Woehrle, U. Marose, R. Knoop, Makromol. Chem. 186, 2209–2228 (1985)\nD. Woehrle, G. Meyer, Makromol. Chem. 181, 2127–2135 (1980)\nD. Woehrle, B. Schulte, Makromol. Chem. 186, 2229–2245 (1985)\nH. Yanagi, M. Wada, Y. Ueda, M. Ashida, D. Woehrle, Macromol. Chem. Phys. (Makromol. Chem.) 193, 1903–1911 (1992)\nJ.H. Tian, I.J. Wang, Dyes Pigm. 29, 169–179 (1995)\nJ.H. Tian, I.J. Wang, Dyes Pigm. 29, 181–190 (1995)\nW.C. Drinkard, J.C. Bailar Jr, J. Am. Chem. Soc. 81, 4795–4797 (1959)\nN. Masilela, T. Nyokong, Dyes Pigm. 84, 242–248 (2010)\nV. Iliev, A. Mihaylova, J. Photochem. Photobiol. A 149, 23–30 (2002)\nB.N. Achar, K.S. 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Smith, J.R. Hardy, J. Chem. Phys. 119, 2812–2819 (2003)\nG.C. Psarras, E. Manolakaki, G.M. Tsangaris, Composites Part A 34, 1187–1198 (2003)",{"EN":571},"Novel nickel and copper phthalocyanine polymers, with uniformly carboxylic end groups and carbonyl groups as bridges linking the phthalocyanine units, were successfully prepared. Structural modelling and atomic absorption spectroscopy confirmed the network polymeric structure and suggested at least nine phthalocyanine units in each polymeric network. The dielectric properties of the prepared polymers were investigated over a wide range of frequencies at room temperature. The electric modulus formalism was used to study the conductivity relaxation in the prepared polymers. The collapsing of the real part of the conductivity function, σ’, at higher frequencies for both materials was observed indicating that the local molecular dynamics is due to the polymer conjugated backbone (functional and\u002For terminal groups) with no clear effect of the central metal.",{"EN":573},"Synthesis and Electric Modulus Formalism of Novel Metal-Phthalocyanine Bridged Polymers",{"VOID":575},"10.1007\u002Fs10904-014-0055-7","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10904-014-0055-7",[578,593,608],{"id":579,"sortIndex":210,"researcher":20,"roles":580,"affiliations":581,"properties":590},"4f4dc5b4-679e-4074-aa6f-b0fbb52109ef",[212],[582],{"id":20,"sortIndex":21,"affiliation":583,"properties":20},{"id":584,"createTime":585,"updateTime":585,"relativeEntities":586,"slug":20,"properties":587,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"183062c8-4aad-4d4a-96b1-4f71d275251e","2024-01-09T22:01:23.012+00:00",[],{"title":588},{"VI":589},"Department of Polymers and Pigments, National Research Centre, Giza, Egypt",{"title":591},{"VI":592},"Mahmoud A. Abd El-Ghaffar",{"id":594,"sortIndex":244,"researcher":20,"roles":595,"affiliations":596,"properties":605},"761b4b3a-961f-4ef4-ac0f-a9ca60a09058",[212],[597],{"id":20,"sortIndex":21,"affiliation":598,"properties":20},{"id":599,"createTime":600,"updateTime":600,"relativeEntities":601,"slug":20,"properties":602,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"8dc4906b-f852-4d2e-b733-f72804532149","2024-01-17T17:13:05.391+00:00",[],{"title":603},{"VI":604},"Department of Microwave Physics and Dielectrics, National Research Centre, Giza, Egypt",{"title":606},{"VI":607},"Gamal M. Turky",{"id":609,"sortIndex":21,"researcher":20,"roles":610,"affiliations":611,"properties":617},"21925030-3161-47c8-a4e6-1ecdcb8d94e7",[212],[612],{"id":20,"sortIndex":21,"affiliation":613,"properties":20},{"id":584,"createTime":585,"updateTime":585,"relativeEntities":614,"slug":20,"properties":615,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":616},{"VI":589},{"title":618},{"VI":619},"Wael M. 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A 129, 105692 (2020)\nY.B. Tao, P. Li, S.Q. Shi, Effects of carbonization temperature and component ratio on electromagnetic interference shielding effectiveness of wood ceramics. Materials 9, 540 (2016)\nJ.H. Ha, S.K. Hong, J.K. Ryu, Development of multi-functional graphene polymer composites having electromagnetic interference shielding and de-Lcing properties. Polymers 11, 01 (2019)\nN. Yousefi, X.Y. Sun, J.K. Kim, Highly aligned graphene\u002Fpolymer nanocomposites with excellent dielectric properties for high-performance electromagnetic interference shielding. Adv. Mater. 26, 5480–5487 (2014)\nY. Wang, W. Wang, X.D. Ding, Multilayer-structured Ni-Co-Fe-P\u002Fpolyaniline\u002Fpolyimide composite fabric for robust electromagnetic shielding with low reflection characteristic. J. Chem. Eng. 380(12), 108–113 (2020)\nL. Wang, Z. Wang, G.Y. Ning, Research progress of wood-based conductive electromagnetic shielding materials. Mater. Rep. 32(7), 2320–2328 (2018)\nQ. Liu, Q. Cao, H. Bi, CoNi@SiO2@TiO2 and CoNi@Air@TiO2 microspheres with strong wideband microwave absorption. Adv. Mater. 28(3), 486–490 (2016)\nJ.W. Li, A.F. Wang, J.B. Qin, Lightweight polymethacrylimide@copper\u002Fnickel composite foams for electromagnetic shielding and monopole antennas. Compos. A 140, 106144 (2021)\nS. Li, Z. Xu, Y. Dong, Ni@nylon mesh\u002FPP composites with a novel treering structure for enhancing electromagnetic shielding. Compos. A: Appl. Sci. Manuf. 131, 105798 (2020)\nX. Wang, B. Wen, X. Yang, Construction of core-shell structural nickel@graphite nanoplate functional particles with high electromagnetic shielding effectiveness. Compos. B: Eng. 173, 106904 (2019)\nJ. Li, Y. Ding, Q. Gao, Ultrathin and flexible biomassderived C@CoFe nanocomposite films for efficient electromagnetic interference shielding. Compos. B: Eng. 190, 107935 (2020)\nZ.R. He, X.H. Jie, W.Q. Lian, Hierarchical structure and hydrophobic properties of copper based micro\u002Fnano structure prepared by EDM. Mater. Eng. 48(01), 144–149 (2020)\nF.F. Tian, M.A. Hu, M. Li, Preparation of superhydrophobic nickel film by electrochemical deposition. Fudan J. (Nat. Sci. Ed.) 51(02), 163–167 (2012)",{"EN":664},"The changes of properties of wood-based Cu–Ni composites were studied via a simple electroless Cu and Ni method on wood surface to obtain Cu–Ni multilayer composites with excellent properties. The results showed that the wood was conducted via two times electroless Cu and one times electroless Ni had better performance, obtaining good surface roughness (9.99 μm) and good hydrophobic performance (contact angle, 122.5°). Here, Cu particles grew closely among Ni particles and embedded in Ni particles. The electrical conductivity of wood-based Cu–Ni composites was 2370.76 S\u002Fcm. 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Kamalinahad, M. Solimannejad, E. Shakerzadeh, Nonlinear optical (NLO) response of pristine and functionalized dodecadehydrotribenzo[18]annulene ([18]DBA): a theoretical study. Bull. Chem. Soc. Jpn. 89 (2016) 692–699. doi:10.1246\u002Fbcsj.20160006\nA. AlbertIrudayaraj, A. Dhayal Raj, G. Illavarasi, Growth and characterization of BTCS and BTZA crystals grown by slow evaporation method. Optik 125 (2014) 824–827. doi:10.1016\u002Fj.ijleo.2013.07.063\nJ.G.S. Lopes, L.F.C. de Oliveira, H.G.M. Edwards, P.S. Santos, The Raman spectrum of thiourea–oxocarbon adducts. J. Raman Spectrosc. 35 (2004) 131–139. doi:10.1002\u002Fjrs.1113\nP.G. Lacroix, I. Malfant, C. Lepetit, Second-order nonlinear optics in coordination chemistry: an opendoor towards multi-functional materials and molecular switches. Coord. Chem. Rev. 308 (2016) 381–394. doi:10.1016\u002Fj.ccr.2015.05.015\nS.A. Begum, M. Hossain, J. 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Karuppasamy, V. Sivasubramani, M. Senthilpandian, P. Ramasamy, Growth and characterization of semi-organic third order nonlinear optical (NLO) Potassium 3,5-dinitrobenzoate (KDNB) single crystal, RSC Adv. 6 (2016) 109105–109123 doi:10.1039\u002FC6RA21590D",{"EN":974},"The solubility test and nucleation kinetics studies of Tetrakis (thiourea) palladium chloride (TTPC) have been carried out and optical quality crystals of TTPC have been harvested by means of slow evaporation method. The single crystal X-ray diffraction studies revealed the orthorhombic structure and Pna21 space group of the crystals. To ascertain the stoichiometry and the purity of the crystals, elemental analysis has been performed. The etching studies of the crystal suggested the dimensional nucleation mechanism. Fourier Transform Infrared spectral studies have been employed in order to establish the metal—sulphur coordination prevailing in the crystal. The Ultra Violet transmittance study has been conducted to calculate the transmittance, band gap energy, Urbach’s energy, nature of electronic transitions, reflectance, refractive index, optical and electrical conductivities, extinction coefficient and electrical susceptibility. The mechanical stability of the TTPC crystals has been examined by Vicker’s hardness test in terms of hardness number, elastic stiffness constant, Meyer’s Index, minimum level of indentation load, load dependent constant, brittleness index and corrected hardness. Kurtz method has been adopted which showed the phase matching nature of TTPC and concluded that TTPC showed 1.15 times second harmonic generation efficiency as that of KDP. By using the dielectric and ac conductivity study, the activation energy values of the electrical process have been measured. Using theoretical approach, important solid state parameters such as valence electron plasma energy, Penn gap, Fermi energy and polarisability have been derived. The photoconductivity studies revealed the negative conductivity of the title crystal.",{"EN":976},"Physicochemical Analysis of Tetrakis (Thiourea) Palladium Chloride: A Prospective Non Linear Optical Crystal",{"VOID":978},"10.1007\u002Fs10904-017-0518-8","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10904-017-0518-8",[981,997,1021],{"id":982,"sortIndex":244,"researcher":20,"roles":983,"affiliations":984,"properties":994},"d0cec17d-eccb-429c-b3dd-230ebc117c1a",[212],[985],{"id":20,"sortIndex":21,"affiliation":986,"properties":20},{"id":987,"createTime":988,"updateTime":988,"relativeEntities":989,"slug":990,"properties":991,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"a9c65689-a751-4831-8cf2-3e3b7ca8cbb3","2024-04-06T16:52:22.777+00:00",[],"Department-of-Chemistry-St-Joseph-s-College-of-Engineering-Chennai-India",{"title":992},{"VI":993},"Department of Chemistry, St. Joseph’s College of Engineering, Chennai, India",{"title":995},{"VI":996},"K. 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Lett. 303, 201–208 (1999)",{"EN":1083},"The interaction of the Hg(II) derivatives bis(pentafluoro)phenyl mercury (1), (pentafluoro)phenyl mercury chloride (2) and trimeric perfluoro-ortho-phenylene mercury (3) with tolane (diphenylacetylene) in CH2Cl2 leads to the formation of [1·tolane], [2\n                        2·tolane], and [3·tolane·CH2Cl2]. These adducts have been characterized by elemental analysis, X-ray crystallography, and luminescence spectroscopy. In the solid state of these adducts, the tolane molecules interact with the molecules of 1, 2 and 3 via secondary Hg–π interactions and arene–fluoroarene interactions. 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Hayder, Fabrication of (PS-Cr2O3\u002FZnCoFe2O4) nanocomposites and studying their dielectric and fluorescence properties for IR sensors. Egypt. J. Chem. 63, 709–717 (2020). https:\u002F\u002Fdoi.org\u002F10.21608\u002Fejchem.2019.13333.1832\nZ. Ping, Q.T. Nguyen, A.Essamri,and, J.N. el, Polym. Adv. Technol. \" Macromol. Chem. Phys. No. 195, 21–31 (1994)\nK. Sreekanth, T. Siddaiah, N.O. Gopal, Y. Madhava Kumar, Ramu Optical and electrical conductivity studies of VO2+ doped polyvinyl pyrrolidone (PVP) polymer electrolytes. J. Science: Adv. Mater. Devices ISBN 4, 230–236 (2019)\nM.A. Habeeb, W.S. Mahdi, Characterization of (CMC-PVP-Fe2O3) nanocomposites for gamma shielding application. Int. J. Emerg. Trends Eng. Res. 7(9), 247–255 (2019). https:\u002F\u002Fdoi.org\u002F10.30534\u002Fijeter\u002F2019\u002F06792019\nL.H. Gaabour, Influence of silica nanoparticles incorporated with chitosan\u002Fpolyacrylamide polymer nanocomposites. J. Mater. Res. 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Res Appl. 12(2), 69–92 (2004)\nM.A. Habeeb, Z.S. Jaber, W.H. Radi, Synthesis and characterization of (PVA-CoO-ZrO2) nanostructures for Nanooptoelectronic Fields. East Eur. J. Phys. 2, 228–233 (2023). https:\u002F\u002Fdoi.org\u002F10.26565\u002F2312-4334-2023-2-25\nS. Kramadhati, K. Thyagarajan, Optical properties of pure and doped (KnO3 & MgCl2) polyvinyl alcohol polymer thin films. Int. J. Thin Film Sci. Technol. 6(8), 15–18 (2013)\nN.K. Al–Sharifi, M.A. Habeeb, Improvement structural and dielectric properties of PS\u002FSiC\u002FSb2O3 nanostructures for nanoelectronics devices. East Eur. J. Phys. 2, 341–347 (2023). https:\u002F\u002Fdoi.org\u002F10.26565\u002F2312-4334-2023-2-40\nS.M. Mahdi, M.A. Habeeb, Fabrication and tailored structural and dielectric characteristics of (SrTiO3\u002F NiO) nanostructure Doped (PEO\u002FPVA) polymeric blend for Electronics Fields. Phys. Chem. Solid State. 23(4), 785–792 (2022). https:\u002F\u002Fdoi.org\u002F10.15330\u002Fpcss.23.4.785-792\nY. Wang, S. Dong, X. Li, C. Hong, X. Zhang, Synthesis, properties, and multifarious applications of SiC nanoparticles. Rev. Ceram. Int. 48(7), 8882–8913 (2022)\nA. Hashim, M.A. Habeeb, Q.M. Jebur, Structural, dielectric and optical properties for (polyvinyl alcohol-polyethylene oxide manganese oxide) nanocomposites. Egypt. J. Chem. 63, 735–749 (2020). https:\u002F\u002Fdoi.org\u002F10.21608\u002Fejchem.2019.14849.1901\nM.A. Habeeb, W.K. Kadhim, Study the optical properties of (PVA-PVAC-Ti) nanocomposites. J. Eng. Appl. Sci. 9(4), 109–113 (2014). https:\u002F\u002Fdoi.org\u002F10.36478\u002Fjeasci.2014.109.113\nM.A. Habeeb, Z.S. Jaber, Enhancement of structural and optical properties of CMC\u002FPAA blend by addition of zirconium carbide nanoparticles for optics and photonics applications. East Eur. J. Phys. 4, 176–182 (2022). https:\u002F\u002Fdoi.org\u002F10.26565\u002F2312-4334-2022-4-18\nA.H. Hadi, M.A. Habeeb, Effect of CdS nanoparticles on the optical properties of (PVA-PVP) blends. J. Mech. Eng. Res. Dev. 44(3), 265–274 (2021)\nA. Shubha, S.R. Manohara, L. Gerward, Influence of polyvinyl pyrrolidone on optical, electrical, and dielectric properties of poly (2-ethyl-2-oxazoline)-polyvinyl pyrrolidone blends. J. Mol. Liq. 247, 328–336 (2017)\nS.M. Mahdi, M.A. Habeeb, Tailoring the structural and optical features of (PEO–PVA)\u002F(SrTiO3–CoO) polymeric nanocomposites for optical and biological applications. Polym. Bull. (2023). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00289-023-04676-x\nK.M.K. Sudha, K.H.G. Harish, R. Chandramani, M.C. Radhakrishna, PVP influence on PVA crystallinity and optical band gap. Arch. Phy Res. 6, 18–21 (2015)\nM.H. Dwech, M.A. Habeeb, A.H. Mohammed, Fabrication and evaluation of optical characteristics of (PVA-MnO2–ZrO2) nanocomposites for Nanodevices in Optics and Photonics. Ukr. J. Phys. 67(10), 757–762 (2022). https:\u002F\u002Fdoi.org\u002F10.15407\u002Fujpe67.10.757\nS.H. Yu, M. Yoshimura, J.M.C. Moreno, T. Fujiwara, T. Fujino, R. Teranishi, In situ fabrication and optical properties of a novel polystyrene\u002Fsemiconductor nanocomposite embedded with CdS nanowires by a soft solution processing route. Langmuir. 17(5), 1700–1707 (2001). https:\u002F\u002Fdoi.org\u002F10.1021\u002Fla000941p\nN.K. Al–Sharifi, M.A. Habeeb, Synthesis and exploring structural and optical properties of Ternary PS\u002FSiC\u002FSb2O3 nanocomposites for optoelectronic and antimicrobial applications. Silicon. 15, 4979–4989 (2023)\nA.A. Mohammed, M.A. Habeeb, Modification and development of the structural, optical and antibacterial characteristics of PMMA\u002FSi3N4\u002FTaC nanostructures. Silicon 15, 5163–5174 (2023). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12633-023-02426-2\nR.S. Abdul Hamza, M.A. Habeeb, Synthesis and tuning the structural, morphological and dielectric characteristics of PVA-CMC-SiO2–Cr2O3 hybrid nanostructures for nanoelectronics devices. Opt. Quant. Electron. 55(8), 705 (2023)\nK. Rajesh, V. Crasta, N. Rithin Kumar, G. Shetty, P. Rekha, Structural, optical, mechanical and dielectric properties of titanium dioxide doped PVA\u002FPVP nanocomposite. J. Polym. Res. 26(4), 1–10 (2019)\nU. Kumar, D. Padalia, L. Lendvai, P. Bhandari, P.K.L. Ranakoti, Fabrication of europium-doped barium titanate\u002Fpolystyrene polymer nanocomposites using ultrasonication-assisted method: Structural and optical properties. Polym (Basel). 14(21), 4664 (2022). https:\u002F\u002Fdoi.org\u002F10.3390\u002Fpolym14214664\nM.A. Habeeb, R.S. Abdul Hamza, Novel of (biopolymer blend-MgO) nanocomposites: fabrication and characterization for humidity sensors. J. Bionanosci. 12, 328–335 (2018). https:\u002F\u002Fdoi.org\u002F10.1166\u002Fjbns.2018.1535\nM.A. Habeeb, R.S.A. Hamza, Synthesis of (polymer blend –MgO) nanocomposites and studying electrical properties for piezoelectric application. Indonesian J. Electr. Eng. Inf. 6(4), 428–435 (2018). https:\u002F\u002Fdoi.org\u002F10.11591\u002Fijeei.v6i1.511\nG.D. Liang, S.C. Tjong, Electrical properties of percolative polystyrene\u002Fcarbon nanofiber composites. IEEE Trans. Dielectr. Electr. Insul. 15(1), 214–220 (2008)\nS.M. Mahdi, M. A. Habeeb, Evaluation of the influence of SrTiO3 and CoO nanofillers on the structural and electrical polymer blend characteristics for electronic devices. Digest J. Nanomater. Biostr. 17(3), 941–948 (2022). https:\u002F\u002Fdoi.org\u002F10.15251\u002FDJNB.2022.173.941\nM.A. Habeeb, A.H. Mohammed, Fabrication and tailored optical and electrical characteristics of Co2O3\u002FSiC nanostructures doped PVA for multifunctional technological applications. Opt. Quant. Electron. 55, 791 (2023). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11082-023-05061-8\nK.M. Vidyalaya, Analysis of electrical properties of Li3+ ion beam irradiated lexan polycarbonate also act as catalyst to speed up the discoloration. The Formation of Conjugated 21(10), 43–46 (2009)\nM.A. Habeeb, W.H. Rahdi, Titanium carbide nanoparticles filled PVA–PAAm nanocomposites, structural and electrical characteristics for application in energy storage. Opt. Quant. Electron. 55, 334 (2023). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11082-023-04639-6\nA.A. Mohammed, M.A. Habeeb, Effect of Si3N4\u002FTaC nanomaterials on the structural and electrical characteristics of poly methyl methacrylate for electrical and electronics applications. East Eur. J. Phys. 2, 157–164 (2023). https:\u002F\u002Fdoi.org\u002F10.26565\u002F2312-4334-2023-2-15",{"EN":1239},"This study aims to fabricate thick films of polyvinyl alcohol containing (SiC-BaTiO3) nanoparticles in order to improve their structural, optical, and electrical characteristics. The (PVA-SiC-BaTiO3) nanocomposite films are made utilize the casting method. According to optical microscope images, the (SiC-BaTiO3) nanoparticles create a persistent network inside the polymer compared to pure (PVA). FTIR reveals that the peak position, peak shape, and intensity are shifting. When (SiC-BaTO3) nanoparticle concentrations were increased to (6 wt%), optical tests revealed that the absorbance of (PVA-SiC-BaTiO3) nanocomposites enhanced from 50 to 98%. Meanwhile, the energy gap of (PVA-SiC-BaTiO3) nanocomposites declined from (4.42 to 3.56) eV and from (4.1 to 2.85) eV for the allowed and forbidden indirect transitions, respectively. These findings could be important for using (PVA-SiC-BaTiO3) nanostructures in diverse optics applications and nanotechnology. As well as an increase in optical parameters including optical conductivity, real and imaginary dielectric constants, refractive index, absorption coefficient, and extinction coefficient. The dielectric loss (ε″) and dielectric constant (ε′) for nanocomposites reduce as the frequency of the applied electrical field rises but increase as the concentration of nanoparticles (NPs) rises. When the (SiC-BaTiO3) concentration reached (6 wt%) at a frequency of 100 Hz, A.C. electrical conductivity (σa.c) and dielectric constant increases by around 90% and 130%, respectively. Based on the results, doping PVA with (SiC-BaTiO3) NPs enhanced the optical, structural, and A.C electrical properties, making the (PVA-SiC-BaTiO3) nanostructures promising materials for various optoelectronic nanodevices.",{"EN":1241},"Synthesis and Tuning the Structural, Optical and Electrical Behavior of PVA-SiC-BaTiO3 Polymer Nanostructures for Photonics and Electronics Nanodevices",{"VOID":1243},"10.1007\u002Fs10904-023-02900-9","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10904-023-02900-9",[1246,1263],{"id":1247,"sortIndex":21,"researcher":20,"roles":1248,"affiliations":1249,"properties":1260},"851feb79-316c-445f-8530-b3afe0f771a2",[212],[1250],{"id":20,"sortIndex":21,"affiliation":1251,"properties":20},{"id":1252,"createTime":1253,"updateTime":1254,"relativeEntities":1255,"slug":1256,"properties":1257,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"088cecaf-b08a-45ed-8188-191d54545e72","2024-01-11T00:45:13.885+00:00","2025-06-11T21:32:24.740+00:00",[],"College-of-Education-for-Pure-Sciences-Department-of-Physics-University-of-Babylon-Babil-Iraq",{"title":1258},{"VI":1259},"College of Education for Pure Sciences, Department of Physics, University of Babylon, Babil, Iraq",{"title":1261},{"VI":1262},"Majeed Ali Habeeb",{"id":1264,"sortIndex":210,"researcher":20,"roles":1265,"affiliations":1266,"properties":1272},"56e84cea-3942-4ab0-9c14-cbf9bda62b73",[212],[1267],{"id":20,"sortIndex":21,"affiliation":1268,"properties":20},{"id":1252,"createTime":1253,"updateTime":1254,"relativeEntities":1269,"slug":1256,"properties":1270,"entityType":48,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1271},{"VI":1259},{"title":1273},{"VI":1274},"Waleed Khalid Kadhim",{"url":1244,"publisher":1276,"properties":1304},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1277,"slug":10,"properties":1278,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1282,"manageAffiliations":1283,"indexDatabases":1284,"url":20,"thumbnailPath":20,"statistic":1299,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":1279,"eissn":1280,"title":1281},{"VOID":13},{"VOID":15},{"EN":17},[],[],[1285,1292],{"id":83,"indexDatabase":1286,"url":96,"indexYears":97,"academicFieldIds":1291,"indexDatabaseRanking":101},{"id":85,"createTime":86,"updateTime":87,"relativeEntities":1287,"label":1288,"description":1289,"key":93,"publicationTags":1290,"standard":20},[],{"EN":90,"VI":90},{"EN":90,"VI":92},[95],[99,100],{"id":64,"indexDatabase":1293,"url":79,"indexYears":20,"academicFieldIds":1298,"indexDatabaseRanking":20},{"id":66,"createTime":67,"updateTime":68,"relativeEntities":1294,"label":1295,"description":1296,"key":75,"publicationTags":1297,"standard":20},[],{"EN":71,"VI":71},{"VI":73,"EN":74},[77,78],[81],{"impactFactor":21,"impactFactorByYear":1300,"i10Index":115,"i10IndexLast5Year":116,"totalPublication":117,"totalPublicationByYear":1301,"totalCitation":139,"totalCitationByYear":1302,"totalCitationPerPublication":160,"totalCitationPerPublicationByYear":1303,"hindexLast5Year":181,"hindex":181},{"2012":104,"2013":105,"2014":106,"2015":107,"2016":106,"2017":108,"2018":109,"2019":110,"2020":111,"2021":112,"2022":113,"2023":114},{"2005":119,"2006":120,"2007":121,"2008":122,"2009":123,"2010":124,"2011":125,"2012":126,"2013":127,"2014":128,"2015":129,"2016":130,"2017":131,"2018":132,"2019":133,"2020":134,"2021":135,"2022":136,"2023":137,"2024":138},{"2005":141,"2006":142,"2007":143,"2008":144,"2009":129,"2010":145,"2011":146,"2012":147,"2013":148,"2014":149,"2015":150,"2016":151,"2017":152,"2018":153,"2019":154,"2020":155,"2021":156,"2022":157,"2023":158,"2024":159},{"2005":162,"2006":163,"2007":164,"2008":165,"2009":166,"2010":167,"2011":168,"2012":169,"2013":170,"2014":171,"2015":163,"2016":172,"2017":173,"2018":174,"2019":175,"2020":176,"2021":177,"2022":178,"2023":179,"2024":180},{"pages":1305},{"VOID":1306},"1-14","2023-10-30",2023,{"id":1310,"createTime":1311,"updateTime":1311,"relativeEntities":1312,"slug":20,"properties":1313,"entityType":203,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1322,"fullTextUrl":20,"authors":1323,"publicationType":362,"publisherRelationship":1383,"citationCount":20,"citationInfo":20,"publishDate":1417,"publishYear":1308,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":394},"dea43091-862b-4de3-b5b2-57b16479ab3a","2024-01-05T23:52:45.095+00:00",[],{"references":1314,"abstract":1316,"title":1318,"doi":1320},{"VOID":1315},"M. 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Sci 17(221045), 2 (2022)",{"EN":1317},"For the degradation of MB dye, pure and Ta-doped (1 to 5%) WO3 nanoparticles (NPs) have been synthesized in the current work. Facile and efficient hydrothermal method has been carried out to synthesize pure and Ta-doped WO3 NPs. By using SEM, XRD, UV–Vis, PL, FTIR and Raman spectroscopy analysis, the morphological, structural, optical, and spectral features have been addressed. Due to the well-matched ionic radius of Ta+5 with WO3, it plays a crucial part in lowering the rate at which photogenerated electron\u002Fhole pairs recombine, resulting in band gap reductions of up to 2.12 and 1.9 eV for direct and indirect transitions, respectively. It is worth mentioning that two distinct WO3 phases monoclinic and hexagonal have been examined in XRD and Raman analysis for 4 and 5 wt% Ta concentrations. The photocatalytic activity of fabricated NPs was examined by irradiation of visible light on MB dye. Due to the smaller size of NPs, the surface-to-volume ratio would be high which introduces more active adsorption sites thus enhancing the photocatalytic activity of the catalyst. Quite interestingly, 3% Ta-doped WO3 catalyst exhibits optimal results owing to maximal degradation of 91% in 120 min ascribed to the Burstein-Moss Effect. Recyclability and trapping experiments have been performed to check the stability of the optimized catalyst. The remarkable photocatalytic activity of a 3% Ta-doped catalyst demonstrates its potential uses in the treatment of wastewater. \n\n                  \n                    \n                  \n                ",{"EN":1319},"Synthesis and Characterization of Ta-Doped WO3 Nanomaterials for Their Application as an Efficient 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