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dc.contributor.authorYÜKSEL PRICE, BERAT
dc.contributor.authorKennedy, Stuart R.
dc.date.accessioned2022-07-04T12:48:04Z
dc.date.available2022-07-04T12:48:04Z
dc.identifier.citationYÜKSEL PRICE B., Kennedy S. R. , "Resonant acoustic-mixing technology as a novel method for production of negative-temperature coefficient thermistors", JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2022
dc.identifier.issn0957-4522
dc.identifier.othervv_1032021
dc.identifier.otherav_2c57fb7f-2439-490a-b495-ee418df81d32
dc.identifier.urihttp://hdl.handle.net/20.500.12627/182103
dc.identifier.urihttps://doi.org/10.1007/s10854-022-08110-2
dc.description.abstractThe 0.1 mol% B2O3-added NiMn2O4, Ni0.5Co0.5Cu0.3Mn1.7O4 and 0.1 mol% B2O3-added Ni0.5Co0.5Cu0.3Mn1.7O4 negative-temperature coefficient thermistors (NTC) prepared by Resonant Acoustic-Mixing (RAM) technology were compared with samples produced by the traditional ball-milling technique. The metal oxide powders were weighed and mixed by a resonant acoustic mixer (LabRAM 1, Resodyn Acoustic Mixers) at 15 and 40 g acceleration for 20 min and 2 h. To prepare the other group of samples, the metal oxide powders were mixed by ball milling for 6 h. The B2O3 addition was chosen in order to reduce processing time by eliminating calcination step. For further comparison, the Ni0.5Co0.5Cu0.3Mn1.7O4 samples without B2O3 addition were calcinated at 900 degrees C for 2 h and sintered at 1100 degrees C for 5 h, whereas the sintering process at 1100 degrees C for 5 h without calcination was applied for the 0.1 mol% B2O3-added NiMn2O4 and 0.1 mol% B2O3-added Ni0.5Co0.5Cu0.3Mn1.7O4 samples. To the best of our knowledge, RAM was applied to produce NTC thermistors for the first time in this study. The best electrical resistivity and material constant results were obtained as 79.5 omega cm and 3180 K for the 0.1 mol% B2O3-added Ni0.5Co0.5Cu0.3Mn1.7O4 (B8RAM) sample after 40 g 20 min RAM process followed by the sintering at 1100 degrees C without calcination. This study will be the lead to guide future studies into the cost-effective fast fabrication of negative-temperature coefficient thermistors by resonant acoustic mixing technology due to reduction of manufacturing costs by reducing processing time.
dc.language.isoeng
dc.subjectTemel Bilimler (SCI)
dc.subjectFİZİK, YOĞUN MADDE
dc.subjectBilgi Sistemleri, Haberleşme ve Kontrol Mühendisliği
dc.subjectSinyal İşleme
dc.subjectYoğun Madde 1:Yapısal, Mekanik ve Termal Özellikler
dc.subjectTemel Bilimler
dc.subjectMühendislik ve Teknoloji
dc.subjectCondensed Matter Physics
dc.subjectSignal Processing
dc.subjectMetals and Alloys
dc.subjectMaterials Chemistry
dc.subjectGeneral Engineering
dc.subjectStatistical and Nonlinear Physics
dc.subjectPhysical Sciences
dc.subjectFİZİK, UYGULAMALI
dc.subjectGeneral Materials Science
dc.subjectEngineering (miscellaneous)
dc.subjectElectrical and Electronic Engineering
dc.subjectElectronic, Optical and Magnetic Materials
dc.subjectFizik
dc.subjectMalzeme Bilimi
dc.subjectMALZEME BİLİMİ, MULTIDISCIPLINARY
dc.subjectMühendislik, Bilişim ve Teknoloji (ENG)
dc.subjectMühendislik
dc.subjectMÜHENDİSLİK, ELEKTRİK VE ELEKTRONİK
dc.titleResonant acoustic-mixing technology as a novel method for production of negative-temperature coefficient thermistors
dc.typeMakale
dc.relation.journalJOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS
dc.contributor.departmentİstanbul Üniversitesi-Cerrahpaşa , Mühendislik Fakültesi , Metalurji Ve Malzeme Mühendisliği Bölümü
dc.contributor.firstauthorID3405618


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