TY - JOUR
T1 - Sb2Te3 nanoparticles with enhanced seebeck coefficient and low thermal conductivity
AU - Chen, Jing
AU - Sun, Ting
AU - Sim, Daohao
AU - Peng, Haiyang
AU - Wang, Huatao
AU - Fan, Shufen
AU - Hng, Huey Hoon
AU - Ma, Jan
AU - Boey, Freddy Yin Chang
AU - Li, Sean
AU - Samani, Majid Kabiri
AU - Chen, George Chung Kit
AU - Chen, Xiaodong
AU - Wu, Tom
AU - Yan, Qingyu
PY - 2010/5/25
Y1 - 2010/5/25
N2 - Nanostructured thermoelectric semiconductors represent a promising new direction that can further increase energy conversion efficiency, which requires the realization of thermoelectric nanocrystals with size comparable to their de Broglie wavelength while maintaining a high electrical conductivity. Here, we demonstrate a new facile process to grow self-assembled Sb2Te 3 nanoparticles with controlled particle size and enhanced thermoelectric properties by using a catalyst-free vapor transport growth technique. The samples show much more enhanced Seebeck coefficients than that of bulk Sb2Te3 with similar charge carrier concentration. Meanwhile, the thermal conductivity measurements with pulse photothermal reflectance suggest that the these Sb2Te3 nanoparticle films show much reduced thermal conductivity as compared to that of bulk Sb 2Te3. The discussed approach is promising for realizing new types of highly efficient thermoelectric semiconductors.
AB - Nanostructured thermoelectric semiconductors represent a promising new direction that can further increase energy conversion efficiency, which requires the realization of thermoelectric nanocrystals with size comparable to their de Broglie wavelength while maintaining a high electrical conductivity. Here, we demonstrate a new facile process to grow self-assembled Sb2Te 3 nanoparticles with controlled particle size and enhanced thermoelectric properties by using a catalyst-free vapor transport growth technique. The samples show much more enhanced Seebeck coefficients than that of bulk Sb2Te3 with similar charge carrier concentration. Meanwhile, the thermal conductivity measurements with pulse photothermal reflectance suggest that the these Sb2Te3 nanoparticle films show much reduced thermal conductivity as compared to that of bulk Sb 2Te3. The discussed approach is promising for realizing new types of highly efficient thermoelectric semiconductors.
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U2 - 10.1021/cm9038297
DO - 10.1021/cm9038297
M3 - Article
AN - SCOPUS:77952472538
SN - 0897-4756
VL - 22
SP - 3086
EP - 3092
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 10
ER -