Synthesis and fabrication of silver nanowires embedded in PVP fibers by near-field electrospinning process. Yang, T. L., Pan, C. T., Chen, Y. C., Lin, L. W., Wu, I. C., Hung, K. H., Lin, Y. R., Huang, H. L., Liu, C. F., Mao, S. W., & Kuo, S. W. OPTICAL MATERIALS, 39:118-124, JAN, 2015. doi abstract bibtex In this study, polyol process was used to synthesize anisotropic silver nanowires (AgNWs). The ranges of synthesis temperature from 100 to 200 degrees were explored, and the ranges from 4.53 to 13.75 wt% Polyvinylpyrrolidone (PVP) were investigated. The lengths and diameters of AgNWs from 15 to 30 mu m and from 10 to 50 nm can be obtained, respectively. Then, the AgNWs embedded in PVP fibers (PVP/AgNIWs) were fabricated by the near-field electrospinning (NFES) process. The AgNWs were broken down into nanoparticles when the applied electric field was over 1.4 x 10(7) V/m. However, the AgNWs could remain undamaged when the electric field was controlled between 8 x 10(6) and 1.2 x 10(7) V/m. Therefore, the threshold electric field can be determined and the diameter of the PVP/AgNWs fibers from 500 nm to 10 mu m can be obtained. Next, the characteristics of the PVP/AgNWs were examined by N&K analyzer, four-point probe, EDS and FTIR. The transmittance of PVP/AgNWs films was 51.29-68.97% and the sheet resistance of purified AgNWs was 0.125 Omega/sq which was superior to that of commercial ITO. In addition, the haze of PVP/AgNWs with 30-90 nm thick was from 11.5% to 13.3%. lathe near future, the PVP/AgNWs fibers can be used as transparent conductive electrodes. (C) 2014 Elsevier B.V. All rights reserved.
@article{ ISI:000348747900019,
Author = {Yang, T. L. and Pan, C. T. and Chen, Y. C. and Lin, L. W. and Wu, I. C.
and Hung, K. H. and Lin, Y. R. and Huang, H. L. and Liu, C. F. and Mao,
S. W. and Kuo, S. W.},
Title = {{Synthesis and fabrication of silver nanowires embedded in PVP fibers by
near-field electrospinning process}},
Journal = {{OPTICAL MATERIALS}},
Year = {{2015}},
Volume = {{39}},
Pages = {{118-124}},
Month = {{JAN}},
Abstract = {{In this study, polyol process was used to synthesize anisotropic silver
nanowires (AgNWs). The ranges of synthesis temperature from 100 to 200
degrees were explored, and the ranges from 4.53 to 13.75 wt\%
Polyvinylpyrrolidone (PVP) were investigated. The lengths and diameters
of AgNWs from 15 to 30 mu m and from 10 to 50 nm can be obtained,
respectively. Then, the AgNWs embedded in PVP fibers (PVP/AgNIWs) were
fabricated by the near-field electrospinning (NFES) process. The AgNWs
were broken down into nanoparticles when the applied electric field was
over 1.4 x 10(7) V/m. However, the AgNWs could remain undamaged when the
electric field was controlled between 8 x 10(6) and 1.2 x 10(7) V/m.
Therefore, the threshold electric field can be determined and the
diameter of the PVP/AgNWs fibers from 500 nm to 10 mu m can be obtained.
Next, the characteristics of the PVP/AgNWs were examined by N\&K
analyzer, four-point probe, EDS and FTIR. The transmittance of PVP/AgNWs
films was 51.29-68.97\% and the sheet resistance of purified AgNWs was
0.125 Omega/sq which was superior to that of commercial ITO. In
addition, the haze of PVP/AgNWs with 30-90 nm thick was from 11.5\% to
13.3\%. lathe near future, the PVP/AgNWs fibers can be used as
transparent conductive electrodes. (C) 2014 Elsevier B.V. All rights
reserved.}},
DOI = {{10.1016/j.optmat.2014.11.009}},
ISSN = {{0925-3467}},
EISSN = {{1873-1252}},
ResearcherID-Numbers = {{Kuo, Shiaowei/B-7385-2009
Kuo, Shiao-Wei/L-9048-2019
Pan, CT/E-4776-2013
}},
ORCID-Numbers = {{Kuo, Shiao-Wei/0000-0002-4306-7171}},
Unique-ID = {{ISI:000348747900019}},
}
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W."],"bibdata":{"bibtype":"article","type":"article","author":[{"propositions":[],"lastnames":["Yang"],"firstnames":["T.","L."],"suffixes":[]},{"propositions":[],"lastnames":["Pan"],"firstnames":["C.","T."],"suffixes":[]},{"propositions":[],"lastnames":["Chen"],"firstnames":["Y.","C."],"suffixes":[]},{"propositions":[],"lastnames":["Lin"],"firstnames":["L.","W."],"suffixes":[]},{"propositions":[],"lastnames":["Wu"],"firstnames":["I.","C."],"suffixes":[]},{"propositions":[],"lastnames":["Hung"],"firstnames":["K.","H."],"suffixes":[]},{"propositions":[],"lastnames":["Lin"],"firstnames":["Y.","R."],"suffixes":[]},{"propositions":[],"lastnames":["Huang"],"firstnames":["H.","L."],"suffixes":[]},{"propositions":[],"lastnames":["Liu"],"firstnames":["C.","F."],"suffixes":[]},{"propositions":[],"lastnames":["Mao"],"firstnames":["S.","W."],"suffixes":[]},{"propositions":[],"lastnames":["Kuo"],"firstnames":["S.","W."],"suffixes":[]}],"title":"Synthesis and fabrication of silver nanowires embedded in PVP fibers by near-field electrospinning process","journal":"OPTICAL MATERIALS","year":"2015","volume":"39","pages":"118-124","month":"JAN","abstract":"In this study, polyol process was used to synthesize anisotropic silver nanowires (AgNWs). The ranges of synthesis temperature from 100 to 200 degrees were explored, and the ranges from 4.53 to 13.75 wt% Polyvinylpyrrolidone (PVP) were investigated. The lengths and diameters of AgNWs from 15 to 30 mu m and from 10 to 50 nm can be obtained, respectively. Then, the AgNWs embedded in PVP fibers (PVP/AgNIWs) were fabricated by the near-field electrospinning (NFES) process. The AgNWs were broken down into nanoparticles when the applied electric field was over 1.4 x 10(7) V/m. However, the AgNWs could remain undamaged when the electric field was controlled between 8 x 10(6) and 1.2 x 10(7) V/m. Therefore, the threshold electric field can be determined and the diameter of the PVP/AgNWs fibers from 500 nm to 10 mu m can be obtained. Next, the characteristics of the PVP/AgNWs were examined by N&K analyzer, four-point probe, EDS and FTIR. The transmittance of PVP/AgNWs films was 51.29-68.97% and the sheet resistance of purified AgNWs was 0.125 Omega/sq which was superior to that of commercial ITO. In addition, the haze of PVP/AgNWs with 30-90 nm thick was from 11.5% to 13.3%. lathe near future, the PVP/AgNWs fibers can be used as transparent conductive electrodes. (C) 2014 Elsevier B.V. All rights reserved.","doi":"10.1016/j.optmat.2014.11.009","issn":"0925-3467","eissn":"1873-1252","researcherid-numbers":"Kuo, Shiaowei/B-7385-2009 Kuo, Shiao-Wei/L-9048-2019 Pan, CT/E-4776-2013 ","orcid-numbers":"Kuo, Shiao-Wei/0000-0002-4306-7171","unique-id":"ISI:000348747900019","bibtex":"@article{ ISI:000348747900019,\nAuthor = {Yang, T. L. and Pan, C. T. and Chen, Y. C. and Lin, L. W. and Wu, I. C.\n and Hung, K. H. and Lin, Y. R. and Huang, H. L. and Liu, C. F. and Mao,\n S. W. and Kuo, S. W.},\nTitle = {{Synthesis and fabrication of silver nanowires embedded in PVP fibers by\n near-field electrospinning process}},\nJournal = {{OPTICAL MATERIALS}},\nYear = {{2015}},\nVolume = {{39}},\nPages = {{118-124}},\nMonth = {{JAN}},\nAbstract = {{In this study, polyol process was used to synthesize anisotropic silver\n nanowires (AgNWs). The ranges of synthesis temperature from 100 to 200\n degrees were explored, and the ranges from 4.53 to 13.75 wt\\%\n Polyvinylpyrrolidone (PVP) were investigated. The lengths and diameters\n of AgNWs from 15 to 30 mu m and from 10 to 50 nm can be obtained,\n respectively. Then, the AgNWs embedded in PVP fibers (PVP/AgNIWs) were\n fabricated by the near-field electrospinning (NFES) process. The AgNWs\n were broken down into nanoparticles when the applied electric field was\n over 1.4 x 10(7) V/m. However, the AgNWs could remain undamaged when the\n electric field was controlled between 8 x 10(6) and 1.2 x 10(7) V/m.\n Therefore, the threshold electric field can be determined and the\n diameter of the PVP/AgNWs fibers from 500 nm to 10 mu m can be obtained.\n Next, the characteristics of the PVP/AgNWs were examined by N\\&K\n analyzer, four-point probe, EDS and FTIR. The transmittance of PVP/AgNWs\n films was 51.29-68.97\\% and the sheet resistance of purified AgNWs was\n 0.125 Omega/sq which was superior to that of commercial ITO. In\n addition, the haze of PVP/AgNWs with 30-90 nm thick was from 11.5\\% to\n 13.3\\%. lathe near future, the PVP/AgNWs fibers can be used as\n transparent conductive electrodes. (C) 2014 Elsevier B.V. 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