Cargando…
High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence
A highly efficient and convenient conjugate electrospinning technique is employed to obtain high pairing rate Janus-structured microfibers in electrospun products by optimizing the spinning conditions. In addition, a Janus-structured microfiber array rendering tri-functional performance of tunable m...
Autores principales: | , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2019
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062496/ https://www.ncbi.nlm.nih.gov/pubmed/35515332 http://dx.doi.org/10.1039/c9ra01147a |
_version_ | 1784698955499569152 |
---|---|
author | Tian, Jiao Ma, Qianli Yu, Wensheng Li, Dan Dong, Xiangting Liu, Guixia Wang, Jinxian |
author_facet | Tian, Jiao Ma, Qianli Yu, Wensheng Li, Dan Dong, Xiangting Liu, Guixia Wang, Jinxian |
author_sort | Tian, Jiao |
collection | PubMed |
description | A highly efficient and convenient conjugate electrospinning technique is employed to obtain high pairing rate Janus-structured microfibers in electrospun products by optimizing the spinning conditions. In addition, a Janus-structured microfiber array rendering tri-functional performance of tunable magnetism, electrically anisotropic conduction and increased fluorescence is prepared via the same technique using a rotating device as a fiber collector. The array is composed of an ordered arrangement of Janus-structured microfibers. The extraordinary Janus structure and oriented arrangement endow the Janus-structured microfibers with excellent fluorescence. The fluorescence intensity of the Janus-structured microfiber array is, respectively, 1.21, 14.3 and 20.3 times higher than that of the Janus-structured microfiber non-array, the composite microfiber array and the composite microfiber non-array. The Janus-structured microfiber array has a similar saturation magnetization to the contradistinctive specimens. Additionally, the magnetism of the Janus-structured microfiber array can be modulated with different mass ratios of Fe(3)O(4) nanoparticles (NPs), and the conductance ratio between the length direction and diameter direction of the Janus-structured microfibers for the array can be tuned from 10(3) to 10(6) by adding a higher percentage of polyaniline (PANI). Our new findings have established a highly efficient conjugate electrospinning technique to prepare Janus-structured microfibers of high pairing rate, and complete isolation of fluorescent material from magnetic nanoparticles and conductive material is accomplished in the Janus-structured microfibers to ensure high fluorescence intensity without a notably disadvantageous influence of dark-colored substances. More importantly, the fabrication technique for the Janus-structured microfibers can be generalized to manufacture other Janus-structured multifunctional materials. |
format | Online Article Text |
id | pubmed-9062496 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-90624962022-05-04 High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence Tian, Jiao Ma, Qianli Yu, Wensheng Li, Dan Dong, Xiangting Liu, Guixia Wang, Jinxian RSC Adv Chemistry A highly efficient and convenient conjugate electrospinning technique is employed to obtain high pairing rate Janus-structured microfibers in electrospun products by optimizing the spinning conditions. In addition, a Janus-structured microfiber array rendering tri-functional performance of tunable magnetism, electrically anisotropic conduction and increased fluorescence is prepared via the same technique using a rotating device as a fiber collector. The array is composed of an ordered arrangement of Janus-structured microfibers. The extraordinary Janus structure and oriented arrangement endow the Janus-structured microfibers with excellent fluorescence. The fluorescence intensity of the Janus-structured microfiber array is, respectively, 1.21, 14.3 and 20.3 times higher than that of the Janus-structured microfiber non-array, the composite microfiber array and the composite microfiber non-array. The Janus-structured microfiber array has a similar saturation magnetization to the contradistinctive specimens. Additionally, the magnetism of the Janus-structured microfiber array can be modulated with different mass ratios of Fe(3)O(4) nanoparticles (NPs), and the conductance ratio between the length direction and diameter direction of the Janus-structured microfibers for the array can be tuned from 10(3) to 10(6) by adding a higher percentage of polyaniline (PANI). Our new findings have established a highly efficient conjugate electrospinning technique to prepare Janus-structured microfibers of high pairing rate, and complete isolation of fluorescent material from magnetic nanoparticles and conductive material is accomplished in the Janus-structured microfibers to ensure high fluorescence intensity without a notably disadvantageous influence of dark-colored substances. More importantly, the fabrication technique for the Janus-structured microfibers can be generalized to manufacture other Janus-structured multifunctional materials. The Royal Society of Chemistry 2019-04-05 /pmc/articles/PMC9062496/ /pubmed/35515332 http://dx.doi.org/10.1039/c9ra01147a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Tian, Jiao Ma, Qianli Yu, Wensheng Li, Dan Dong, Xiangting Liu, Guixia Wang, Jinxian High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
title | High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
title_full | High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
title_fullStr | High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
title_full_unstemmed | High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
title_short | High pairing rate Janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
title_sort | high pairing rate janus-structured microfibers and array: high-efficiency conjugate electrospinning fabrication, structure analysis and co-instantaneous multifunctionality of anisotropic conduction, magnetism and enhanced red fluorescence |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062496/ https://www.ncbi.nlm.nih.gov/pubmed/35515332 http://dx.doi.org/10.1039/c9ra01147a |
work_keys_str_mv | AT tianjiao highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence AT maqianli highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence AT yuwensheng highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence AT lidan highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence AT dongxiangting highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence AT liuguixia highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence AT wangjinxian highpairingratejanusstructuredmicrofibersandarrayhighefficiencyconjugateelectrospinningfabricationstructureanalysisandcoinstantaneousmultifunctionalityofanisotropicconductionmagnetismandenhancedredfluorescence |