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Significant reduction of thermal conductivity of intermetallic Mg2Si thermoelectric material from carbon fiber inclusion

dc.contributor.authorRahman, MRen_AU
dc.contributor.authorIslam, SMKNen_AU
dc.contributor.authorCortie, DLen_AU
dc.contributor.authorStamper, CJen_AU
dc.contributor.authorTanveer Karim, AMMen_AU
dc.contributor.authorWang, XLen_AU
dc.date.accessioned2026-01-29T04:05:51Zen_AU
dc.date.issued2024-02-06en_AU
dc.date.statistics2025-01-09en_AU
dc.description.abstractThermoelectric power generation, which utilizes dispersed waste heat energy, has garnered interest as a durable and eco-friendly power source. Mg2Si-based alloys show great potential as thermoelectric materials for converting energy in the intermediate to high temperature range. The thermoelectric performance of Mg2 has been improved using techniques such as impurity doping, nano-structuring, and alloying. Additionally, they have the potential to lead to a decrease in the weight of thermoelectric generators, which is a crucial characteristic for the automotive industry. To decrease the thermal conductivity of silicide-based materials, one can modify phonon scattering by introducing nanosized crystalline grains. This work investigates the impact of Carbon Fiber-doping and small quantities of the isoelectronic impurity carbon fiber (CF) on the thermal characteristics of magnesium silicide (Mg2Si). The study focused on examining the impact of different levels of Carbon fiber doping on Mg2Si (specifically, Mg2Si:CF=1:x where x represents the doping amount of 0.0025, 0.005, 0.0075, 0.01, and 0.05 ratio). This work produced compact polycrystalline samples of Mg2Si by Spark Plasma Sintering techniques. The materials' shape, content, and structure were studied using SEM, EDS, and XRD investigations following each step of the process. This work presents an analysis of the thermal conductivity of the samples which analysis using Laser flash analysis techniques. However, CF did decrease the thermal conductivity significantly and we achieved lowest thermal conductivity till date for Mg2Si. Approximately, 68.44% thermal conductivity reduced by doped Mg2Si at room temperature compared to undoped Mg2Si we produced in our laboratory as well as 53.61% reduction compared to reported Mg2Si undoped samples[1]. Additionally, thermal conductivity of 5 wt.% CF Mg2Si showed up to 30.67% reduction at room temperature and 56.92% reduction at 773 K compared to reported Sb and C co-doped Mg2Si.en_AU
dc.identifier.booktitle46th Annual Condensed Matter and Materials Meeting, Charles Sturt University, Wagga Wagga, NSW, 6 to 9 February, 2024, Conference Handbooken_AU
dc.identifier.citationRahman, R. M., Islam, S. M. K. N., Cortie, D., Stamper, C., Tanveer Karim, A. M. M. & Wang. X. (2024). Significant reduction of thermal conductivity of intermetallic Mg2Si thermoelectric material from carbon fiber inclusion. Poster presentation to the 46th Annual Condensed Matter and Materials Meeting, Charles Sturt University, Wagga Wagga, NSW, 6 to 9 February, 2024. In 46th Annual Condensed Matter and Materials Meeting, Charles Sturt University, Wagga Wagga, NSW, 6 to 9 February, 2024, Conference Handbook (pp. 67). Parkville, Victoria : Australian Institute of Physics.en_AU
dc.identifier.conferenceenddate2024-02-09en_AU
dc.identifier.conferencename46th Annual Condensed Matter and Materials Meetingen_AU
dc.identifier.conferenceplaceWagga Wagga, NSWen_AU
dc.identifier.conferencestartdate2024-02-06en_AU
dc.identifier.pagination67en_AU
dc.identifier.placeofpublicationParkville, Victoriaen_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/16989en_AU
dc.publisherAustralian Institute of Physicsen_AU
dc.subjectCarbon fibersen_AU
dc.subjectCrystal dopingen_AU
dc.subjectIntermetallic compoundsen_AU
dc.subjectMagnesium silicidesen_AU
dc.subjectPolycrystalsen_AU
dc.subjectTemperature dependenceen_AU
dc.subjectThermal analysisen_AU
dc.subjectThermal conductivityen_AU
dc.subjectThermoelectric generatorsen_AU
dc.subjectThermoelectric materialsen_AU
dc.titleSignificant reduction of thermal conductivity of intermetallic Mg2Si thermoelectric material from carbon fiber inclusionen_AU
dc.typeConference Posteren_AU

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