Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites
Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites...
Ausführliche Beschreibung
Autor*in: |
Anis-ur-Rehman, M. [verfasserIn] Saqib, M. [verfasserIn] Abdullah, A. [verfasserIn] |
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Format: |
E-Artikel |
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Sprache: |
Englisch |
Erschienen: |
2016 |
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Schlagwörter: |
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Übergeordnetes Werk: |
Enthalten in: Journal of materials science - Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990, 27(2016), 6 vom: 06. Feb., Seite 5517-5525 |
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Übergeordnetes Werk: |
volume:27 ; year:2016 ; number:6 ; day:06 ; month:02 ; pages:5517-5525 |
Links: |
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DOI / URN: |
10.1007/s10854-016-4455-z |
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Katalog-ID: |
SPR014022877 |
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520 | |a Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. | ||
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700 | 1 | |a Saqib, M. |e verfasserin |4 aut | |
700 | 1 | |a Abdullah, A. |e verfasserin |4 aut | |
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10.1007/s10854-016-4455-z doi (DE-627)SPR014022877 (SPR)s10854-016-4455-z-e DE-627 ger DE-627 rakwb eng 600 670 620 ASE 33.61 bkl 51.10 bkl 51.40 bkl 53.09 bkl Anis-ur-Rehman, M. verfasserin aut Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites 2016 Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. Ferrite (dpeaa)DE-He213 Differential Scanning Calorimetry (dpeaa)DE-He213 Dielectric Constant (dpeaa)DE-He213 Dielectric Loss (dpeaa)DE-He213 Curie Temperature (dpeaa)DE-He213 Saqib, M. verfasserin aut Abdullah, A. verfasserin aut Enthalten in Journal of materials science Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990 27(2016), 6 vom: 06. Feb., Seite 5517-5525 (DE-627)317827154 (DE-600)2016994-2 1573-482X nnns volume:27 year:2016 number:6 day:06 month:02 pages:5517-5525 https://dx.doi.org/10.1007/s10854-016-4455-z lizenzpflichtig Volltext GBV_USEFLAG_A SYSFLAG_A GBV_SPRINGER GBV_ILN_11 GBV_ILN_20 GBV_ILN_22 GBV_ILN_23 GBV_ILN_24 GBV_ILN_31 GBV_ILN_32 GBV_ILN_39 GBV_ILN_40 GBV_ILN_60 GBV_ILN_62 GBV_ILN_63 GBV_ILN_65 GBV_ILN_69 GBV_ILN_70 GBV_ILN_73 GBV_ILN_74 GBV_ILN_90 GBV_ILN_95 GBV_ILN_100 GBV_ILN_105 GBV_ILN_110 GBV_ILN_120 GBV_ILN_138 GBV_ILN_150 GBV_ILN_151 GBV_ILN_152 GBV_ILN_161 GBV_ILN_170 GBV_ILN_171 GBV_ILN_187 GBV_ILN_213 GBV_ILN_224 GBV_ILN_230 GBV_ILN_250 GBV_ILN_281 GBV_ILN_285 GBV_ILN_293 GBV_ILN_370 GBV_ILN_602 GBV_ILN_636 GBV_ILN_702 GBV_ILN_2001 GBV_ILN_2003 GBV_ILN_2004 GBV_ILN_2005 GBV_ILN_2006 GBV_ILN_2007 GBV_ILN_2009 GBV_ILN_2010 GBV_ILN_2011 GBV_ILN_2014 GBV_ILN_2015 GBV_ILN_2020 GBV_ILN_2021 GBV_ILN_2025 GBV_ILN_2026 GBV_ILN_2027 GBV_ILN_2031 GBV_ILN_2034 GBV_ILN_2037 GBV_ILN_2038 GBV_ILN_2039 GBV_ILN_2044 GBV_ILN_2048 GBV_ILN_2049 GBV_ILN_2050 GBV_ILN_2055 GBV_ILN_2057 GBV_ILN_2059 GBV_ILN_2061 GBV_ILN_2064 GBV_ILN_2065 GBV_ILN_2068 GBV_ILN_2070 GBV_ILN_2086 GBV_ILN_2088 GBV_ILN_2093 GBV_ILN_2106 GBV_ILN_2107 GBV_ILN_2108 GBV_ILN_2110 GBV_ILN_2111 GBV_ILN_2112 GBV_ILN_2113 GBV_ILN_2116 GBV_ILN_2118 GBV_ILN_2119 GBV_ILN_2122 GBV_ILN_2129 GBV_ILN_2143 GBV_ILN_2144 GBV_ILN_2147 GBV_ILN_2148 GBV_ILN_2152 GBV_ILN_2153 GBV_ILN_2188 GBV_ILN_2190 GBV_ILN_2232 GBV_ILN_2336 GBV_ILN_2446 GBV_ILN_2470 GBV_ILN_2472 GBV_ILN_2507 GBV_ILN_2522 GBV_ILN_2548 GBV_ILN_4012 GBV_ILN_4035 GBV_ILN_4037 GBV_ILN_4046 GBV_ILN_4112 GBV_ILN_4125 GBV_ILN_4126 GBV_ILN_4242 GBV_ILN_4246 GBV_ILN_4249 GBV_ILN_4251 GBV_ILN_4305 GBV_ILN_4306 GBV_ILN_4307 GBV_ILN_4313 GBV_ILN_4322 GBV_ILN_4323 GBV_ILN_4324 GBV_ILN_4325 GBV_ILN_4326 GBV_ILN_4333 GBV_ILN_4334 GBV_ILN_4335 GBV_ILN_4336 GBV_ILN_4338 GBV_ILN_4393 GBV_ILN_4700 33.61 ASE 51.10 ASE 51.40 ASE 53.09 ASE AR 27 2016 6 06 02 5517-5525 |
spelling |
10.1007/s10854-016-4455-z doi (DE-627)SPR014022877 (SPR)s10854-016-4455-z-e DE-627 ger DE-627 rakwb eng 600 670 620 ASE 33.61 bkl 51.10 bkl 51.40 bkl 53.09 bkl Anis-ur-Rehman, M. verfasserin aut Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites 2016 Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. Ferrite (dpeaa)DE-He213 Differential Scanning Calorimetry (dpeaa)DE-He213 Dielectric Constant (dpeaa)DE-He213 Dielectric Loss (dpeaa)DE-He213 Curie Temperature (dpeaa)DE-He213 Saqib, M. verfasserin aut Abdullah, A. verfasserin aut Enthalten in Journal of materials science Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990 27(2016), 6 vom: 06. Feb., Seite 5517-5525 (DE-627)317827154 (DE-600)2016994-2 1573-482X nnns volume:27 year:2016 number:6 day:06 month:02 pages:5517-5525 https://dx.doi.org/10.1007/s10854-016-4455-z lizenzpflichtig Volltext GBV_USEFLAG_A SYSFLAG_A GBV_SPRINGER GBV_ILN_11 GBV_ILN_20 GBV_ILN_22 GBV_ILN_23 GBV_ILN_24 GBV_ILN_31 GBV_ILN_32 GBV_ILN_39 GBV_ILN_40 GBV_ILN_60 GBV_ILN_62 GBV_ILN_63 GBV_ILN_65 GBV_ILN_69 GBV_ILN_70 GBV_ILN_73 GBV_ILN_74 GBV_ILN_90 GBV_ILN_95 GBV_ILN_100 GBV_ILN_105 GBV_ILN_110 GBV_ILN_120 GBV_ILN_138 GBV_ILN_150 GBV_ILN_151 GBV_ILN_152 GBV_ILN_161 GBV_ILN_170 GBV_ILN_171 GBV_ILN_187 GBV_ILN_213 GBV_ILN_224 GBV_ILN_230 GBV_ILN_250 GBV_ILN_281 GBV_ILN_285 GBV_ILN_293 GBV_ILN_370 GBV_ILN_602 GBV_ILN_636 GBV_ILN_702 GBV_ILN_2001 GBV_ILN_2003 GBV_ILN_2004 GBV_ILN_2005 GBV_ILN_2006 GBV_ILN_2007 GBV_ILN_2009 GBV_ILN_2010 GBV_ILN_2011 GBV_ILN_2014 GBV_ILN_2015 GBV_ILN_2020 GBV_ILN_2021 GBV_ILN_2025 GBV_ILN_2026 GBV_ILN_2027 GBV_ILN_2031 GBV_ILN_2034 GBV_ILN_2037 GBV_ILN_2038 GBV_ILN_2039 GBV_ILN_2044 GBV_ILN_2048 GBV_ILN_2049 GBV_ILN_2050 GBV_ILN_2055 GBV_ILN_2057 GBV_ILN_2059 GBV_ILN_2061 GBV_ILN_2064 GBV_ILN_2065 GBV_ILN_2068 GBV_ILN_2070 GBV_ILN_2086 GBV_ILN_2088 GBV_ILN_2093 GBV_ILN_2106 GBV_ILN_2107 GBV_ILN_2108 GBV_ILN_2110 GBV_ILN_2111 GBV_ILN_2112 GBV_ILN_2113 GBV_ILN_2116 GBV_ILN_2118 GBV_ILN_2119 GBV_ILN_2122 GBV_ILN_2129 GBV_ILN_2143 GBV_ILN_2144 GBV_ILN_2147 GBV_ILN_2148 GBV_ILN_2152 GBV_ILN_2153 GBV_ILN_2188 GBV_ILN_2190 GBV_ILN_2232 GBV_ILN_2336 GBV_ILN_2446 GBV_ILN_2470 GBV_ILN_2472 GBV_ILN_2507 GBV_ILN_2522 GBV_ILN_2548 GBV_ILN_4012 GBV_ILN_4035 GBV_ILN_4037 GBV_ILN_4046 GBV_ILN_4112 GBV_ILN_4125 GBV_ILN_4126 GBV_ILN_4242 GBV_ILN_4246 GBV_ILN_4249 GBV_ILN_4251 GBV_ILN_4305 GBV_ILN_4306 GBV_ILN_4307 GBV_ILN_4313 GBV_ILN_4322 GBV_ILN_4323 GBV_ILN_4324 GBV_ILN_4325 GBV_ILN_4326 GBV_ILN_4333 GBV_ILN_4334 GBV_ILN_4335 GBV_ILN_4336 GBV_ILN_4338 GBV_ILN_4393 GBV_ILN_4700 33.61 ASE 51.10 ASE 51.40 ASE 53.09 ASE AR 27 2016 6 06 02 5517-5525 |
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10.1007/s10854-016-4455-z doi (DE-627)SPR014022877 (SPR)s10854-016-4455-z-e DE-627 ger DE-627 rakwb eng 600 670 620 ASE 33.61 bkl 51.10 bkl 51.40 bkl 53.09 bkl Anis-ur-Rehman, M. verfasserin aut Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites 2016 Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. Ferrite (dpeaa)DE-He213 Differential Scanning Calorimetry (dpeaa)DE-He213 Dielectric Constant (dpeaa)DE-He213 Dielectric Loss (dpeaa)DE-He213 Curie Temperature (dpeaa)DE-He213 Saqib, M. verfasserin aut Abdullah, A. verfasserin aut Enthalten in Journal of materials science Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990 27(2016), 6 vom: 06. Feb., Seite 5517-5525 (DE-627)317827154 (DE-600)2016994-2 1573-482X nnns volume:27 year:2016 number:6 day:06 month:02 pages:5517-5525 https://dx.doi.org/10.1007/s10854-016-4455-z lizenzpflichtig Volltext GBV_USEFLAG_A SYSFLAG_A GBV_SPRINGER GBV_ILN_11 GBV_ILN_20 GBV_ILN_22 GBV_ILN_23 GBV_ILN_24 GBV_ILN_31 GBV_ILN_32 GBV_ILN_39 GBV_ILN_40 GBV_ILN_60 GBV_ILN_62 GBV_ILN_63 GBV_ILN_65 GBV_ILN_69 GBV_ILN_70 GBV_ILN_73 GBV_ILN_74 GBV_ILN_90 GBV_ILN_95 GBV_ILN_100 GBV_ILN_105 GBV_ILN_110 GBV_ILN_120 GBV_ILN_138 GBV_ILN_150 GBV_ILN_151 GBV_ILN_152 GBV_ILN_161 GBV_ILN_170 GBV_ILN_171 GBV_ILN_187 GBV_ILN_213 GBV_ILN_224 GBV_ILN_230 GBV_ILN_250 GBV_ILN_281 GBV_ILN_285 GBV_ILN_293 GBV_ILN_370 GBV_ILN_602 GBV_ILN_636 GBV_ILN_702 GBV_ILN_2001 GBV_ILN_2003 GBV_ILN_2004 GBV_ILN_2005 GBV_ILN_2006 GBV_ILN_2007 GBV_ILN_2009 GBV_ILN_2010 GBV_ILN_2011 GBV_ILN_2014 GBV_ILN_2015 GBV_ILN_2020 GBV_ILN_2021 GBV_ILN_2025 GBV_ILN_2026 GBV_ILN_2027 GBV_ILN_2031 GBV_ILN_2034 GBV_ILN_2037 GBV_ILN_2038 GBV_ILN_2039 GBV_ILN_2044 GBV_ILN_2048 GBV_ILN_2049 GBV_ILN_2050 GBV_ILN_2055 GBV_ILN_2057 GBV_ILN_2059 GBV_ILN_2061 GBV_ILN_2064 GBV_ILN_2065 GBV_ILN_2068 GBV_ILN_2070 GBV_ILN_2086 GBV_ILN_2088 GBV_ILN_2093 GBV_ILN_2106 GBV_ILN_2107 GBV_ILN_2108 GBV_ILN_2110 GBV_ILN_2111 GBV_ILN_2112 GBV_ILN_2113 GBV_ILN_2116 GBV_ILN_2118 GBV_ILN_2119 GBV_ILN_2122 GBV_ILN_2129 GBV_ILN_2143 GBV_ILN_2144 GBV_ILN_2147 GBV_ILN_2148 GBV_ILN_2152 GBV_ILN_2153 GBV_ILN_2188 GBV_ILN_2190 GBV_ILN_2232 GBV_ILN_2336 GBV_ILN_2446 GBV_ILN_2470 GBV_ILN_2472 GBV_ILN_2507 GBV_ILN_2522 GBV_ILN_2548 GBV_ILN_4012 GBV_ILN_4035 GBV_ILN_4037 GBV_ILN_4046 GBV_ILN_4112 GBV_ILN_4125 GBV_ILN_4126 GBV_ILN_4242 GBV_ILN_4246 GBV_ILN_4249 GBV_ILN_4251 GBV_ILN_4305 GBV_ILN_4306 GBV_ILN_4307 GBV_ILN_4313 GBV_ILN_4322 GBV_ILN_4323 GBV_ILN_4324 GBV_ILN_4325 GBV_ILN_4326 GBV_ILN_4333 GBV_ILN_4334 GBV_ILN_4335 GBV_ILN_4336 GBV_ILN_4338 GBV_ILN_4393 GBV_ILN_4700 33.61 ASE 51.10 ASE 51.40 ASE 53.09 ASE AR 27 2016 6 06 02 5517-5525 |
allfieldsGer |
10.1007/s10854-016-4455-z doi (DE-627)SPR014022877 (SPR)s10854-016-4455-z-e DE-627 ger DE-627 rakwb eng 600 670 620 ASE 33.61 bkl 51.10 bkl 51.40 bkl 53.09 bkl Anis-ur-Rehman, M. verfasserin aut Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites 2016 Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. Ferrite (dpeaa)DE-He213 Differential Scanning Calorimetry (dpeaa)DE-He213 Dielectric Constant (dpeaa)DE-He213 Dielectric Loss (dpeaa)DE-He213 Curie Temperature (dpeaa)DE-He213 Saqib, M. verfasserin aut Abdullah, A. verfasserin aut Enthalten in Journal of materials science Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990 27(2016), 6 vom: 06. Feb., Seite 5517-5525 (DE-627)317827154 (DE-600)2016994-2 1573-482X nnns volume:27 year:2016 number:6 day:06 month:02 pages:5517-5525 https://dx.doi.org/10.1007/s10854-016-4455-z lizenzpflichtig Volltext GBV_USEFLAG_A SYSFLAG_A GBV_SPRINGER GBV_ILN_11 GBV_ILN_20 GBV_ILN_22 GBV_ILN_23 GBV_ILN_24 GBV_ILN_31 GBV_ILN_32 GBV_ILN_39 GBV_ILN_40 GBV_ILN_60 GBV_ILN_62 GBV_ILN_63 GBV_ILN_65 GBV_ILN_69 GBV_ILN_70 GBV_ILN_73 GBV_ILN_74 GBV_ILN_90 GBV_ILN_95 GBV_ILN_100 GBV_ILN_105 GBV_ILN_110 GBV_ILN_120 GBV_ILN_138 GBV_ILN_150 GBV_ILN_151 GBV_ILN_152 GBV_ILN_161 GBV_ILN_170 GBV_ILN_171 GBV_ILN_187 GBV_ILN_213 GBV_ILN_224 GBV_ILN_230 GBV_ILN_250 GBV_ILN_281 GBV_ILN_285 GBV_ILN_293 GBV_ILN_370 GBV_ILN_602 GBV_ILN_636 GBV_ILN_702 GBV_ILN_2001 GBV_ILN_2003 GBV_ILN_2004 GBV_ILN_2005 GBV_ILN_2006 GBV_ILN_2007 GBV_ILN_2009 GBV_ILN_2010 GBV_ILN_2011 GBV_ILN_2014 GBV_ILN_2015 GBV_ILN_2020 GBV_ILN_2021 GBV_ILN_2025 GBV_ILN_2026 GBV_ILN_2027 GBV_ILN_2031 GBV_ILN_2034 GBV_ILN_2037 GBV_ILN_2038 GBV_ILN_2039 GBV_ILN_2044 GBV_ILN_2048 GBV_ILN_2049 GBV_ILN_2050 GBV_ILN_2055 GBV_ILN_2057 GBV_ILN_2059 GBV_ILN_2061 GBV_ILN_2064 GBV_ILN_2065 GBV_ILN_2068 GBV_ILN_2070 GBV_ILN_2086 GBV_ILN_2088 GBV_ILN_2093 GBV_ILN_2106 GBV_ILN_2107 GBV_ILN_2108 GBV_ILN_2110 GBV_ILN_2111 GBV_ILN_2112 GBV_ILN_2113 GBV_ILN_2116 GBV_ILN_2118 GBV_ILN_2119 GBV_ILN_2122 GBV_ILN_2129 GBV_ILN_2143 GBV_ILN_2144 GBV_ILN_2147 GBV_ILN_2148 GBV_ILN_2152 GBV_ILN_2153 GBV_ILN_2188 GBV_ILN_2190 GBV_ILN_2232 GBV_ILN_2336 GBV_ILN_2446 GBV_ILN_2470 GBV_ILN_2472 GBV_ILN_2507 GBV_ILN_2522 GBV_ILN_2548 GBV_ILN_4012 GBV_ILN_4035 GBV_ILN_4037 GBV_ILN_4046 GBV_ILN_4112 GBV_ILN_4125 GBV_ILN_4126 GBV_ILN_4242 GBV_ILN_4246 GBV_ILN_4249 GBV_ILN_4251 GBV_ILN_4305 GBV_ILN_4306 GBV_ILN_4307 GBV_ILN_4313 GBV_ILN_4322 GBV_ILN_4323 GBV_ILN_4324 GBV_ILN_4325 GBV_ILN_4326 GBV_ILN_4333 GBV_ILN_4334 GBV_ILN_4335 GBV_ILN_4336 GBV_ILN_4338 GBV_ILN_4393 GBV_ILN_4700 33.61 ASE 51.10 ASE 51.40 ASE 53.09 ASE AR 27 2016 6 06 02 5517-5525 |
allfieldsSound |
10.1007/s10854-016-4455-z doi (DE-627)SPR014022877 (SPR)s10854-016-4455-z-e DE-627 ger DE-627 rakwb eng 600 670 620 ASE 33.61 bkl 51.10 bkl 51.40 bkl 53.09 bkl Anis-ur-Rehman, M. verfasserin aut Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites 2016 Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. Ferrite (dpeaa)DE-He213 Differential Scanning Calorimetry (dpeaa)DE-He213 Dielectric Constant (dpeaa)DE-He213 Dielectric Loss (dpeaa)DE-He213 Curie Temperature (dpeaa)DE-He213 Saqib, M. verfasserin aut Abdullah, A. verfasserin aut Enthalten in Journal of materials science Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990 27(2016), 6 vom: 06. Feb., Seite 5517-5525 (DE-627)317827154 (DE-600)2016994-2 1573-482X nnns volume:27 year:2016 number:6 day:06 month:02 pages:5517-5525 https://dx.doi.org/10.1007/s10854-016-4455-z lizenzpflichtig Volltext GBV_USEFLAG_A SYSFLAG_A GBV_SPRINGER GBV_ILN_11 GBV_ILN_20 GBV_ILN_22 GBV_ILN_23 GBV_ILN_24 GBV_ILN_31 GBV_ILN_32 GBV_ILN_39 GBV_ILN_40 GBV_ILN_60 GBV_ILN_62 GBV_ILN_63 GBV_ILN_65 GBV_ILN_69 GBV_ILN_70 GBV_ILN_73 GBV_ILN_74 GBV_ILN_90 GBV_ILN_95 GBV_ILN_100 GBV_ILN_105 GBV_ILN_110 GBV_ILN_120 GBV_ILN_138 GBV_ILN_150 GBV_ILN_151 GBV_ILN_152 GBV_ILN_161 GBV_ILN_170 GBV_ILN_171 GBV_ILN_187 GBV_ILN_213 GBV_ILN_224 GBV_ILN_230 GBV_ILN_250 GBV_ILN_281 GBV_ILN_285 GBV_ILN_293 GBV_ILN_370 GBV_ILN_602 GBV_ILN_636 GBV_ILN_702 GBV_ILN_2001 GBV_ILN_2003 GBV_ILN_2004 GBV_ILN_2005 GBV_ILN_2006 GBV_ILN_2007 GBV_ILN_2009 GBV_ILN_2010 GBV_ILN_2011 GBV_ILN_2014 GBV_ILN_2015 GBV_ILN_2020 GBV_ILN_2021 GBV_ILN_2025 GBV_ILN_2026 GBV_ILN_2027 GBV_ILN_2031 GBV_ILN_2034 GBV_ILN_2037 GBV_ILN_2038 GBV_ILN_2039 GBV_ILN_2044 GBV_ILN_2048 GBV_ILN_2049 GBV_ILN_2050 GBV_ILN_2055 GBV_ILN_2057 GBV_ILN_2059 GBV_ILN_2061 GBV_ILN_2064 GBV_ILN_2065 GBV_ILN_2068 GBV_ILN_2070 GBV_ILN_2086 GBV_ILN_2088 GBV_ILN_2093 GBV_ILN_2106 GBV_ILN_2107 GBV_ILN_2108 GBV_ILN_2110 GBV_ILN_2111 GBV_ILN_2112 GBV_ILN_2113 GBV_ILN_2116 GBV_ILN_2118 GBV_ILN_2119 GBV_ILN_2122 GBV_ILN_2129 GBV_ILN_2143 GBV_ILN_2144 GBV_ILN_2147 GBV_ILN_2148 GBV_ILN_2152 GBV_ILN_2153 GBV_ILN_2188 GBV_ILN_2190 GBV_ILN_2232 GBV_ILN_2336 GBV_ILN_2446 GBV_ILN_2470 GBV_ILN_2472 GBV_ILN_2507 GBV_ILN_2522 GBV_ILN_2548 GBV_ILN_4012 GBV_ILN_4035 GBV_ILN_4037 GBV_ILN_4046 GBV_ILN_4112 GBV_ILN_4125 GBV_ILN_4126 GBV_ILN_4242 GBV_ILN_4246 GBV_ILN_4249 GBV_ILN_4251 GBV_ILN_4305 GBV_ILN_4306 GBV_ILN_4307 GBV_ILN_4313 GBV_ILN_4322 GBV_ILN_4323 GBV_ILN_4324 GBV_ILN_4325 GBV_ILN_4326 GBV_ILN_4333 GBV_ILN_4334 GBV_ILN_4335 GBV_ILN_4336 GBV_ILN_4338 GBV_ILN_4393 GBV_ILN_4700 33.61 ASE 51.10 ASE 51.40 ASE 53.09 ASE AR 27 2016 6 06 02 5517-5525 |
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In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices.</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Ferrite</subfield><subfield code="7">(dpeaa)DE-He213</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Differential Scanning Calorimetry</subfield><subfield code="7">(dpeaa)DE-He213</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Dielectric Constant</subfield><subfield code="7">(dpeaa)DE-He213</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Dielectric Loss</subfield><subfield code="7">(dpeaa)DE-He213</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Curie Temperature</subfield><subfield code="7">(dpeaa)DE-He213</subfield></datafield><datafield tag="700" ind1="1" ind2=" "><subfield code="a">Saqib, M.</subfield><subfield code="e">verfasserin</subfield><subfield code="4">aut</subfield></datafield><datafield tag="700" ind1="1" ind2=" "><subfield code="a">Abdullah, A.</subfield><subfield code="e">verfasserin</subfield><subfield code="4">aut</subfield></datafield><datafield tag="773" ind1="0" ind2="8"><subfield code="i">Enthalten in</subfield><subfield code="t">Journal of materials science</subfield><subfield code="d">Dordrecht [u.a.] : Springer Science + Business Media B.V, 1990</subfield><subfield code="g">27(2016), 6 vom: 06. 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Anis-ur-Rehman, M. |
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Anis-ur-Rehman, M. ddc 600 bkl 33.61 bkl 51.10 bkl 51.40 bkl 53.09 misc Ferrite misc Differential Scanning Calorimetry misc Dielectric Constant misc Dielectric Loss misc Curie Temperature Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites |
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600 670 620 ASE 33.61 bkl 51.10 bkl 51.40 bkl 53.09 bkl Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites Ferrite (dpeaa)DE-He213 Differential Scanning Calorimetry (dpeaa)DE-He213 Dielectric Constant (dpeaa)DE-He213 Dielectric Loss (dpeaa)DE-He213 Curie Temperature (dpeaa)DE-He213 |
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Anis-ur-Rehman, M. |
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10.1007/s10854-016-4455-z |
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title_sort |
temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites |
title_auth |
Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites |
abstract |
Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. |
abstractGer |
Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. |
abstract_unstemmed |
Abstract Due to a number of unique properties, nanoferrites are considered among the most emerging materials for the manufacturing of microwave devices. In past few years, different elemental compositions of nanoferrites were fabricated for this purpose. In our work, magnesium-doped lithium ferrites ($ Li_{2−x} %$ Mg_{x} %$ Fe_{2} %$ O_{4.5−δ} $, where x = 0.0 to 1.0) were synthesized by using co-precipitation method in optimized conditions. Structural analysis was done by using X-ray diffraction (XRD); this data was further used to calculate the porosity, phase purity and crystallite size. The XRD results confirmed the formation of spinel structure for all the samples. The surface morphology of the prepared samples was examined by using scanning electron microscope that showed particle like morphology. Thermogravimetric analysis and differential scanning calorimetry were used to investigate the phase transition and melting point of the prepared samples respectively. The analysis showed the phase transitions at two temperature ranges and the melting point of the all the samples was above 900 °C except for composition x = 0.4. Dielectric loss, dielectric constant, AC electrical conductivity and DC electrical resistivity were studied as a function of temperature. Curie temperature was also estimated from the temperature dependent conductivity data and that were observed to be decreased with increase in Mg concentration. The result obtained from the electrical analysis of the prepared samples confirmed that they could be used in frequency dependent devices. |
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container_issue |
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title_short |
Temperature dependent electrical properties of co-precipitated magnesium doped lithium nanoferrites |
url |
https://dx.doi.org/10.1007/s10854-016-4455-z |
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Saqib, M. Abdullah, A. |
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|
score |
7.4005175 |