
Thermal conductivity of Mg2Si1−xSnx nanowire assemblies synthesized using solid-state phase transformation of silicon nanowires
Author(s) -
Amin Ahsan Ali,
Patrick J. Shamberger,
Sreeram Vaddiraju
Publication year - 2021
Publication title -
materials research express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.383
H-Index - 35
ISSN - 2053-1591
DOI - 10.1088/2053-1591/abdf80
Subject(s) - nanowire , materials science , silicon , thermal conductivity , thermoelectric materials , nanotechnology , phase (matter) , semiconductor , doping , optoelectronics , composite material , chemistry , organic chemistry
Recent studies have indicated that doping, alloying, interface-engineering and nanostructuring are some of the strategies useful for obtaining high power factors and low thermal conductivities in materials that are needed for the fabrication of highly efficient thermoelectrics. With the intent of experimentally demonstrating the use of these strategies for designing highly efficient thermoelectrics, our group has in the past reported a solid-state phase transformation strategy for converting silicon nanowires into Mg 2 Si nanowires and Mg 2 Si welded nanowire networks. In this paper, the phase transformation strategy is extended to obtain Mg 2 Si 0.92 Sn 0.08 nanowires from silicon nanowires. This report discusses not only the synthesis of Mg 2 Si 0.92 Sn 0.08 nanowires from silicon nanowires, but also demonstrates that it is possible to control their diameters using variations of the silicon nanowire diameters as a parameter. Moreover, thermal conductivities of the nanowire assemblies discussed in detail in this paper indicated that nanostructuring through the formation of Mg 2 Si 0.92 Sn 0.08 nanowires led to a drastic decrease in their thermal conductivities.